Floppy disk: Difference between revisions

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{{merge from|2M (DOS)|discuss=talk:2M (DOS)#merge proposal|date=January 2024}}
{{short description|Removable disk storage medium}}
{{Short description|Removable disk storage medium}}
{{redirect|Floppy}}
{{Redirect|Floppy}}
[[File:floppy disk 2009 G1.jpg|thumb|8-inch, {{frac|5|1|4}}-inch, and {{frac|3|1|2}}-inch floppy disks]]
{{Use dmy dates|date=July 2022}}
[[File:Floppy Disk Drives 8 5 3.jpg|thumb|8-inch, {{frac|5|1|4}}-inch (full height), and {{frac|3|1|2}}-inch drives]]
[[File:Image3,5''-Diskette removed.jpg|200px|thumbnail|A {{frac|3|1|2}}-inch floppy disk removed from its housing]]
[[File:floppy disk 2009 G1.jpg|thumb|8-inch, -inch, and 3½-inch floppy disks]]
[[File:Floppy Disk Drives 8 5 3.jpg|thumb|8-inch, 5¼-inch (full height), and 3½-inch drives]]
[[File:Image3,5''-Diskette removed.jpg|thumbnail|A 3½-inch floppy disk removed from its housing]]
A '''floppy disk''' or '''floppy diskette''' (casually referred to as a '''floppy''', a '''diskette''', or a '''disk''') is a type of [[disk storage]] composed of a thin and flexible disk of a [[magnetic storage]] medium in a square or nearly square plastic enclosure lined with a fabric that removes dust particles from the spinning disk. Floppy disks store [[digital data]] which can be read and written when the disk is inserted into a '''floppy disk drive''' ('''FDD''') connected to or inside a [[computer]] or other device.


The first floppy disks, invented and made by [[IBM]] in 1971,<ref name="computerhistory.org">{{cite web|url=http://www.computerhistory.org/revolution/memory-storage/8/261|title=Floppy Disks - CHM Revolution|website=www.computerhistory.org|access-date=October 6, 2017|archive-date=2017-01-03 |archive-url=https://web.archive.org/web/20170103071537/http://www.computerhistory.org/revolution/memory-storage/8/261|url-status=live}}</ref> had a disk diameter of {{convert|8|in|mm|1}}.<ref name="Teja_1985"/> Subsequently, the 5¼-inch (133.35 mm) and then the 3½-inch (88.9 mm) became a ubiquitous form of data storage and transfer into the first years of the 21st century.<ref name="Fletcher">{{cite news |last=Fletcher |first=Richard |url=https://www.telegraph.co.uk/finance/2803487/PC-World-announces-the-end-of-the-floppy-disk.html |title=PC World Announces the End of the Floppy Disk |work=[[The Daily Telegraph]] |date=2007-01-30 |access-date=2020-08-02 |archive-url=https://web.archive.org/web/20120102061653/http://www.telegraph.co.uk/finance/2803487/PC-World-announces-the-end-of-the-floppy-disk.html |archive-date=2012-01-02 |url-status=live}}</ref> 3½-inch floppy disks can still be used with an external [[USB]] floppy disk drive. USB drives for 5¼-inch, 8-inch, and [[Floppy disk variants|other-size]] floppy disks are rare to non-existent. Some individuals and organizations continue to use older equipment to read or transfer data from floppy disks.
A '''floppy disk''' or '''floppy diskette''' (sometimes casually referred to as a '''floppy''' or '''diskette''') is a type of [[disk storage]] composed of a thin and flexible disk of a [[magnetic storage]] medium in a square or nearly square plastic enclosure lined with a fabric that removes dust particles from the spinning disk. Floppy disks are read from and written to by a '''floppy disk drive''' ('''FDD''').


Floppy disks were so common in late 20th-century culture that many electronic and software programs continue to use save icons that look like floppy disks well into the 21st century, as a form of [[Skeuomorph#Virtual examples|skeuomorphic design]]. While floppy disk drives still have some limited uses, especially with [[legacy system|legacy industrial computer equipment]], they have been superseded by data storage methods with much greater data storage capacity and [[Computer data storage#Performance|data transfer speed]], such as [[USB flash drive]]s, [[memory card]]s, [[optical disc]]s, and storage available through local [[computer network]]s and [[cloud storage]].
The first floppy disks, invented and made by IBM, had a disk diameter of {{convert|8|inch|mm|0|adj=off}}.<ref name="Teja_1985"/> Subsequently {{convert|5+1/4|in|0|adj=on}} and then {{frac|3|1|2}}-inch (90&nbsp;mm) became a ubiquitous form of data storage and transfer into the first years of the 21st century.<ref name="Fletcher">{{cite news |author-last=Fletcher |author-first=Richard |url=https://www.telegraph.co.uk/finance/2803487/PC-World-announces-the-end-of-the-floppy-disk.html |title=PC World Announces the End of the Floppy Disk |work=[[The Daily Telegraph]] |date=2007-01-30 |access-date=2020-08-02 |archive-url=https://web.archive.org/web/20120102061653/http://www.telegraph.co.uk/finance/2803487/PC-World-announces-the-end-of-the-floppy-disk.html |archive-date=2012-01-02 |url-status=live }}</ref> By 2006, computers were rarely manufactured with installed floppy disk drives; {{frac|3|1|2}}-inch floppy disks can still be used with an external [[USB]] floppy disk drive. USB drives for {{frac|5|1|4}}-inch, 8-inch, and non-standard floppy disks are rare to non-existent. Some individuals and organizations continue to use older equipment to read or transfer data from floppy disks.

Floppy disks were so common in late 20th-century culture that many electronic and software programs continue to use [[Persistence (computer science)|save]] icons that look like floppy disks well into the 21st century. While floppy disk drives still have some limited uses, especially with [[legacy system|legacy industrial computer equipment]], they have been superseded by data storage methods with much greater data storage capacity and [[Computer data storage#Performance|data transfer speed]], such as [[USB flash drive]]s, [[memory card]]s, [[optical disc]]s, and storage available through local [[computer network]]s and [[cloud storage]].


==History==
==History==
[[File:Floppy Disk Drive 8 inch.jpg|left|thumb|An 8-inch disk drive with diskette<br />({{frac|3|1|2}}-inch disk in front, shown for scale)]]
[[File:Floppy disc.jpg|thumb|{{frac|3|1|2}}-inch, high-density diskettes with adhesive labels affixed]]
{{Main|History of the floppy disk}}
{{Main|History of the floppy disk}}
{{Memory types}}
{{Memory types}}
[[File:Floppy Disk Drive 8 inch.jpg|thumb|left|8-inch floppy disk,<br /> inserted in drive,<br />(3½-inch floppy diskette,<br /> in front, shown for scale)]]
[[File:Floppy disc.jpg|thumb|3½-inch, high-density floppy diskettes with adhesive labels affixed]]


The first commercial floppy disks, developed in the late 1960s, were {{convert|8|in}} in diameter;<ref name="Teja_1985"/><ref name="Fletcher"/> they became commercially available in 1971 as a component of IBM products and then were sold separately beginning in 1972 by [[Memorex]] and others.<ref>{{cite web |url=http://www.computerhistory.org/storageengine/floppy-disk-loads-mainframe-computer-data |title=1971: Floppy disk loads mainframe computer data |website=Computer History Museum |publisher=Computer History Museum |access-date=2015-12-01 |archive-url=https://web.archive.org/web/20151208080520/http://www.computerhistory.org/storageengine/floppy-disk-loads-mainframe-computer-data |archive-date=2015-12-08 |url-status=live }}</ref> These disks and associated drives were produced and improved upon by [[IBM]] and other companies such as Memorex, [[Shugart Associates]], and [[Burroughs Corporation]].<ref>{{cite web |url=http://www.disktrend.com/5decades2.htm |title=Five decades of disk drive industry firsts |access-date=2012-10-15 |url-status=dead |archive-url=https://web.archive.org/web/20110726102519/http://www.disktrend.com/5decades2.htm |archive-date=2011-07-26}}</ref> The term "floppy disk" appeared in print as early as 1970,<ref>IBM's 370/145 Uncovered; Interesting Curves Revealed, Datamation, November 1, 1970</ref> and although IBM announced its first media as the "Type 1 Diskette" in 1973, the industry continued to use the terms "floppy disk" or "floppy".
The first commercial floppy disks, developed in the late 1960s, were {{convert|8|in|mm|1}} in diameter;<ref name="Teja_1985"/><ref name="Fletcher"/> they became commercially available in 1971 as a component of IBM products and both drives and disks were then sold separately starting in 1972 by [[Memorex]] and others.<ref>{{cite web |url=http://www.computerhistory.org/storageengine/floppy-disk-loads-mainframe-computer-data |title=1971: Floppy disk loads mainframe computer data |website=Computer History Museum |access-date=2015-12-01 |archive-url=https://web.archive.org/web/20151208080520/http://www.computerhistory.org/storageengine/floppy-disk-loads-mainframe-computer-data |archive-date=2015-12-08 |url-status=live}}</ref> These disks and associated drives were produced and improved upon by [[IBM]] and other companies such as Memorex, [[Shugart Associates]], and [[Burroughs Corporation]].<ref>{{cite web |url=http://www.disktrend.com/5decades2.htm |title=Five decades of disk drive industry firsts |access-date=2012-10-15 |url-status=dead |archive-url=https://web.archive.org/web/20110726102519/http://www.disktrend.com/5decades2.htm |archive-date=2011-07-26}}</ref> The term "floppy disk" appeared in print as early as 1970,<ref>IBM's 370/145 Uncovered; Interesting Curves Revealed, Datamation, November 1, 1970</ref> and although IBM announced its first media as the ''Type 1 Diskette'' in 1973, the industry continued to use the terms "floppy disk" or "floppy".


In 1976, Shugart Associates introduced the {{frac|5|1|4}}-inch FDD. By 1978, there were more than 10 manufacturers producing such FDDs.<ref>{{cite journal |author-last=Watson |title=The Floppy Disk |journal=[[Canadian Business]] |date=2010-05-24 |volume=83 |issue=8 |page=17}}</ref> There were competing [[floppy disk format]]s, with hard- and soft-sector versions and encoding schemes such as [[Differential Manchester encoding|FM]], [[Modified Frequency Modulation|MFM]], [[Modified Frequency Modulation#MMFM|M<sup>2</sup>FM]] and [[Group coded recording|GCR]]. The {{frac|5|1|4}}-inch format displaced the 8-inch one for most applications, and the hard-sectored disk format disappeared. The most common capacity of the {{frac|5|1|4}}-inch format in DOS-based PCs was 360&nbsp;KB, for the DSDD (Double-Sided Double-Density) format using MFM encoding. In 1984, IBM introduced with its PC-AT model the 1.2&nbsp;MB dual-sided {{frac|5|1|4}}-inch floppy disk, but it never became very popular. IBM started using the 720&nbsp;KB [[Double density|double-density]] {{frac|3|1|2}}-inch microfloppy disk on its [[IBM PC Convertible|Convertible]] laptop computer in 1986 and the 1.44&nbsp;MB [[High-density storage media|high-density]] version with the [[IBM Personal System/2|PS/2]] line in 1987. These disk drives could be added to older PC models. In 1988, IBM introduced a drive for 2.88&nbsp;MB "DSED" (Double-Sided Extended-Density) diskettes in its top-of-the-line PS/2 models, but this was a commercial failure.
In 1976, Shugart Associates introduced the 5¼-inch FDD. By 1978, there were more than ten manufacturers producing such FDDs.<ref>{{cite magazine |last=Watson |date=2010-05-24 |title=The Floppy Disk |magazine=[[Canadian Business]] |volume=83 |issue=8 |page=17}}</ref> There were competing [[floppy disk format]]s, with hard- and soft-sector versions and encoding schemes such as [[differential Manchester encoding]] (DM), [[modified frequency modulation]] (MFM), [[Modified frequency modulation#MMFM|M<sup>2</sup>FM]] and [[group coded recording]] (GCR). The 5¼-inch format displaced the 8-inch one for most uses, and the hard-sectored disk format disappeared. The most common capacity of the 5¼-inch format in DOS-based PCs was 360&nbsp;KB (368,640 bytes) for the Double-Sided Double-Density (DSDD) format using MFM encoding.


In 1984, IBM introduced with its [[IBM Personal Computer/AT|PC/AT]] the 1.2&nbsp;MB (1,228,800 bytes) dual-sided 5¼-inch floppy disk, but it never became very popular. IBM started using the 720&nbsp;KB [[double density]] 3½-inch microfloppy disk on its [[IBM PC Convertible|Convertible]] laptop computer in 1986 and the 1.44&nbsp;MB [[High-density storage media|high-density]] version with the [[IBM Personal System/2]] (PS/2) line in 1987. These disk drives could be added to older PC models. In 1988, Y-E Data introduced a drive for 2.88&nbsp;MB Double-Sided Extended-Density (DSED) diskettes which was used by IBM in its top-of-the-line PS/2 and some [[IBM RS/6000|RS/6000]] models and in the second-generation [[NeXTcube]] and [[NeXTstation]]; however, this format had limited market success due to lack of standards and movement to 1.44 MB drives.<ref>{{cite report |title=1992 Disk/Trend Report - Flexible Disk Drives |last=Porter |first=James |date=November 1992 |page=DT14-3}}</ref>
Throughout the early 1980s, limitations of the {{frac|5|1|4}}-inch format became clear. Originally designed to be more practical than the 8-inch format, it was itself too large; as the quality of recording media grew, data could be stored in a smaller area.<ref name="Jarrett">"The Microfloppy—One Key to Portability", Thomas R. Jarrett, Computer Technology Review, winter 1983 (Jan 1984), pp. 245–7</ref> A number of solutions were developed, with drives at 2-, {{frac|2|1|2}}-, 3-, {{frac|3|1|4}}-,<ref>http://www.retrotechnology.com/herbs_stuff/325_inch.jpg<!-- https://web.archive.org/web/20170619124207/http://www.retrotechnology.com/herbs_stuff/325_inch.jpg --></ref> {{frac|3|1|2}}- and 4-inches (and [[Sony]]'s 90.0&nbsp;mm&nbsp;×&nbsp;94.0&nbsp;mm disk) offered by various companies.<ref name="Jarrett"/> They all shared a number of advantages over the old format, including a rigid case with a sliding metal (or, later, sometimes plastic) shutter over the head slot, which helped protect the delicate magnetic medium from dust and damage, and a sliding [[write protection]] tab, which was far more convenient than the adhesive tabs used with earlier disks. The large market share of the well-established {{frac|5|1|4}}-inch format made it difficult for these diverse mutually-incompatible new formats to gain significant market share.<ref name="Jarrett"/> A variant on the Sony design, introduced in 1982 by a large number of manufacturers, was then rapidly adopted; by 1988, the {{frac|3|1|2}}-inch was outselling the {{frac|5|1|4}}-inch.<ref>1991 Disk/Trend Report, Flexible Disk Drives, Figure 2</ref>


Throughout the early 1980s, limits of the 5¼-inch format became clear. Originally designed to be more practical than the 8-inch format, it was becoming considered too large; as the quality of recording media grew, data could be stored in a smaller area.<ref name="Jarrett">"The Microfloppy—One Key to Portability", Thomas R. Jarrett, Computer Technology Review, winter 1983 (Jan 1984), pp. 245–7</ref> Several solutions were developed, with drives at 2-, 2½-, 3-, 3¼-,<ref>[http://www.retrotechnology.com/herbs_stuff/325_inch.jpg Picture of disk]<!-- https://web.archive.org/web/20170619124207/http://www.retrotechnology.com/herbs_stuff/325_inch.jpg --></ref> 3½- and 4-inches (and [[Sony]]'s {{convert|90|x|94|mm|in|2|abbr=on}} disk) offered by various companies.<ref name="Jarrett"/> They all had several advantages over the old format, including a rigid case with a sliding metal (or later, sometimes plastic) shutter over the head slot, which helped protect the delicate magnetic medium from dust and damage, and a sliding [[write protection]] tab, which was far more convenient than the adhesive tabs used with earlier disks. The large market share of the well-established 5¼-inch format made it difficult for these diverse mutually-incompatible new formats to gain significant market share.<ref name="Jarrett"/> A variant on the Sony design, introduced in 1983 by many manufacturers, was then rapidly adopted. By 1988, the 3½-inch was outselling the 5¼-inch.<ref>1991 Disk/Trend Report, Flexible Disk Drives, Figure 2</ref>
Generally, the term floppy disk persisted,<ref group="nb" name="NB_SA"/> even though later style floppy disks have a rigid case around an internal floppy disk.


Generally, the term floppy disk persisted, even though later style floppy disks have a rigid case around an internal floppy disk.
By the end of the 1980s, {{frac|5|1|4}}-inch disks had been superseded by {{frac|3|1|2}}-inch disks. During this time, PCs frequently came equipped with drives of both sizes. By the mid-1990s, {{frac|5|1|4}}-inch drives had virtually disappeared, as the {{frac|3|1|2}}-inch disk became the predominant floppy disk. The advantages of the {{frac|3|1|2}}-inch disk were its higher capacity, its smaller physical size, and its rigid case which provided better protection from dirt and other environmental risks. If a person touches the exposed disk surface of a {{frac|5|1|4}}-inch disk through the drive hole, fingerprints may foul the disk&mdash;and later the disk drive head if the disk is subsequently loaded into a drive&mdash;and it is also easily possible to damage a disk of this type by folding or creasing it, usually rendering it at least partly unreadable. However, largely due to its simpler construction (with no metal parts) the {{frac|5|1|4}}-inch disk [[unit price]] was lower throughout its history, usually in the range of a third to a half that of a {{frac|3|1|2}}-inch disk.{{citation needed|date=October 2012}}

By the end of the 1980s, 5¼-inch disks had been superseded by 3½-inch disks. During this time, PCs frequently came equipped with drives of both sizes. By the mid-1990s, 5¼-inch drives had virtually disappeared, as the 3½-inch disk became the predominant floppy disk. The advantages of the 3½-inch disk were its higher capacity, its smaller physical size, and its rigid case which provided better protection from dirt and other environmental risks.


===Prevalence===
===Prevalence===
[[File:Imation USB FDD 20060623.jpg|thumb|left|[[Imation]] USB floppy drive, model 01946: an external drive that accepts high-density disks]]Floppy disks became commonplace during the 1980s and 1990s in their use with [[personal computer]]s to distribute software, transfer data, and create [[backup]]s. Before hard disks became affordable to the general population,<ref group="nb" name="NB_Costs"/> floppy disks were often used to store a computer's [[operating system]] (OS). Most home computers from that period have an elementary OS and [[BASIC]] stored in [[read-only memory|ROM]], with the option of loading a more advanced [[operating system]] from a floppy disk.
[[File:Imation USB FDD 20060623.jpg|thumb|left|[[Imation]] USB floppy drive, model 01946: an external drive that accepts high-density disks]]


Floppy disks became commonplace during the 1980s and 1990s in their use with [[personal computer]]s to distribute software, transfer data, and create [[backup]]s. Before hard disks became affordable to the general population,<ref group="nb" name="NB_Costs"/> floppy disks were often used to store a computer's [[operating system]] (OS). Most home computers from that time have an elementary OS and [[BASIC]] stored in [[read-only memory]] (ROM), with the option of loading a more advanced OS from a floppy disk.
By the early 1990s, the increasing software size meant large packages like [[Microsoft Windows|Windows]] or [[Adobe Photoshop]] required a dozen disks or more. In 1996, there were an estimated five billion standard floppy disks in use.<ref name="businessweek">{{cite journal |author-last=Reinhardt |author-first=Andy |date=1996-08-12 |title=Iomega's zip drives need a bit more zip |journal=[[Business Week]] |publisher=[[The McGraw-Hill Companies]] |issue=33 |issn=0007-7135 |url=http://www.businessweek.com/1996/33/b3488114.htm |url-status=dead |archive-url=https://web.archive.org/web/20080706151833/http://www.businessweek.com/1996/33/b3488114.htm |archive-date=2008-07-06}}</ref> Then, distribution of larger packages was gradually replaced by [[CD-ROM]]s, [[DVD]]s and online distribution.


By the early 1990s, the increasing software size meant large packages like [[Microsoft Windows|Windows]] or [[Adobe Photoshop]] required a dozen disks or more. In 1996, there were an estimated five billion standard floppy disks in use.<ref name="businessweek">{{cite magazine |last=Reinhardt |first=Andy |date=1996-08-12 |title=Iomega's Zip drives need a bit more zip |magazine=[[Business Week]] |publisher=[[The McGraw-Hill Companies]] |issue=33 |issn=0007-7135 |url=http://www.businessweek.com/1996/33/b3488114.htm |url-status=dead |archive-url=https://web.archive.org/web/20080706151833/http://www.businessweek.com/1996/33/b3488114.htm |archive-date=2008-07-06}}</ref>
An attempt to enhance the existing {{frac|3|1|2}}-inch designs was the [[SuperDisk]] in the late 1990s, utilizing very narrow data tracks and a high precision head guidance mechanism with a capacity of 120 [[megabyte|MB]]<ref>{{cite web |url=http://linuxcommand.org/man_pages/floppy8.html |title=floppy |publisher=LinuxCommand.org |date=2006-01-04 |access-date=2011-06-22 |url-status=dead |archive-url=https://web.archive.org/web/20110727034443/http://linuxcommand.org/man_pages/floppy8.html |archive-date=2011-07-27 }}</ref> and backward-compatibility with standard {{frac|3|1|2}}-inch floppies; a [[format war]] briefly occurred between SuperDisk and other high-density floppy-disk products, although ultimately recordable CDs/DVDs, solid-state flash storage, and eventually online storage would render all these removable disk formats obsolete. External [[USB]]-based floppy disk drives are still available, and many modern systems provide firmware support for booting from such drives.

An attempt to enhance the existing 3½-inch designs was the [[SuperDisk]] in the late 1990s, using very narrow data tracks and a high precision head guidance mechanism with a capacity of 120 [[Megabyte|MB]]<ref>{{cite web |url=http://linuxcommand.org/man_pages/floppy8.html |title=floppy |publisher=LinuxCommand.org |date=2006-01-04 |access-date=2011-06-22 |url-status=dead |archive-url=https://web.archive.org/web/20110727034443/http://linuxcommand.org/man_pages/floppy8.html |archive-date=2011-07-27}}</ref> and backward-compatibility with standard 3½-inch floppies; a [[format war]] briefly occurred between SuperDisk and other high-density floppy-disk products, although ultimately recordable CDs/DVDs, solid-state flash storage, and eventually cloud-based online storage would render all these removable disk formats obsolete. External [[USB]]-based floppy disk drives are still available, and many modern systems provide firmware support for booting from such drives.


===Gradual transition to other formats===
===Gradual transition to other formats===
[[File:Disk-cleaning-kit-front-and-rear.jpg|thumb|Front and rear of a retail {{frac|3|1|2}}-inch and {{frac|5|1|4}}-inch floppy disk cleaning kit, as sold in Australia at retailer Big W, circa early 1990s]]
[[File:Disk-cleaning-kit-front-and-rear.jpg|thumb|Front and rear of a retail 3½-inch and 5¼-inch floppy disk drive cleaning kit, as sold in Australia at retailer Big W, circa early 1990s]]
[[File:Different types of storage components.jpg|thumb|A collection of removable data storage media: Floppy disks, [[flash memory]] media, [[Magnetic-tape data storage|tape-based media]], and [[Optical storage|optical discs]]]]

In the mid-1990s, mechanically incompatible higher-density floppy disks were introduced, like the [[Zip drive|Iomega Zip disk]]. Adoption was limited by the competition between proprietary formats and the need to buy expensive drives for computers where the disks would be used. In some cases, failure in market penetration was exacerbated by the release of higher-capacity versions of the drive and media being not [[backward compatibility|backward-compatible]] with the original drives, dividing the users between new and old adopters. Consumers were wary of making costly investments into unproven and rapidly changing technologies, so none of the technologies became the established standard.
In the mid-1990s, mechanically incompatible higher-density floppy disks were introduced, like the [[Zip drive|Iomega Zip disk]]. Adoption was limited by the competition between proprietary formats and the need to buy expensive drives for computers where the disks would be used. In some cases, failure in market penetration was exacerbated by the release of higher-capacity versions of the drive and media being not [[backward compatibility|backward-compatible]] with the original drives, dividing the users between new and old adopters. Consumers were wary of making costly investments into unproven and rapidly changing technologies, so none of the technologies became the established standard.


Apple introduced the [[iMac]] in 1998 with a CD-ROM drive but no floppy drive; this made USB-connected floppy drives popular accessories, as the iMac came without any writable removable media device.
Apple introduced the [[iMac G3]] in 1998 with a CD-ROM drive but no floppy drive; this made USB-connected floppy drives popular accessories, as the iMac came without any writable removable media device.


[[CD-R|Recordable CDs]] were touted as an alternative, because of the greater capacity, compatibility with existing CD-ROM drives, and—with the advent of [[CD-RW|re-writeable CD]]s and packet writing—a similar reusability as floppy disks.
[[CD-R|Recordable CDs]] were touted as an alternative, because of the greater capacity, compatibility with existing CD-ROM drives, and—with the advent of [[CD-RW|re-writeable CD]]s and packet writing—a similar reusability as floppy disks. However, CD-R/RWs remained mostly an archival medium, not a medium for exchanging data or editing files on the medium itself, because there was no common standard for packet writing which allowed for small updates. Other formats, such as [[magneto-optical drive|magneto-optical discs]], had the flexibility of floppy disks combined with greater capacity, but remained niche due to costs. High-capacity backward compatible floppy technologies became popular for a while and were sold as an option or even included in standard PCs, but in the long run, their use was limited to professionals and enthusiasts.
However, CD-R/RWs remained mostly an archival medium, not a medium for exchanging data or editing files on the medium itself, because there was no common standard for packet writing which allowed for small updates.
Other formats, such as [[Magneto-optical drive|Magneto-optical discs]], had the flexibility of floppy disks combined with greater capacity, but remained niche due to costs.
High-capacity backward compatible floppy technologies became popular for a while and were sold as an option or even included in standard PCs, but in the long run, their use was limited to professionals and enthusiasts.


Flash-based USB-thumb drives finally were a practical and popular replacement, that supported traditional file systems and all common usage scenarios of floppy disks. As opposed to other solutions, no new drive type or special software was required that impeded adoption, since all that was necessary was an already common [[USB]] port.
Flash-based USB-thumb drives finally were a practical and popular replacement, that supported traditional file systems and all common usage scenarios of floppy disks. As opposed to other solutions, no new drive type or special software was required that impeded adoption, since all that was necessary was an already common [[USB]] port.


===Usage in the 21st century===
[[File:Different types of storage components.jpg|thumb|Different data storage media]]
[[File:Floppy hardware emulator.jpg|thumb|left|A [[Floppy disk hardware emulator|floppy hardware emulator]], same size as a 3½-inch drive, provides a USB interface to the user.]]


By 2002, most manufacturers still provided floppy disk drives as standard equipment to meet user demand for [[Sneakernet|file-transfer]] and an emergency boot device, as well as for the general secure feeling of having the familiar device.<ref>{{cite magazine |last=Spring |first=Tom |date=2002-07-24 |title=What Has Your Floppy Drive Done for You Lately? PC makers are still standing by floppy drives despite vanishing consumer demand |url=http://www.pcworld.com/article/103037/what_has_your_floppy_drive_done_for_you_lately.html |magazine=[[PC World]] |access-date=2012-04-04 |url-status=dead |archive-url=https://web.archive.org/web/20111224033044/http://www.pcworld.com/article/103037/what_has_your_floppy_drive_done_for_you_lately.html |archive-date=2011-12-24}}</ref> By this time, the retail cost of a floppy drive had fallen to around $20 ({{Inflation|US|20|2002|fmt=eq}}), so there was little financial incentive to omit the device from a system. Subsequently, enabled by the widespread support for USB flash drives and BIOS boot, manufacturers and retailers progressively reduced the availability of floppy disk drives as standard equipment. In February 2003, [[Dell]], one of the leading personal computer vendors, announced that floppy drives would no longer be pre-installed on [[Dell Dimension]] home computers, although they were still available as a selectable option and purchasable as an aftermarket [[Original equipment manufacturer|OEM]] add-on.<ref>{{cite web |url=http://news.bbc.co.uk/1/hi/uk/2905953.stm |title=R.I.P. Floppy Disk |work=[[BBC News]] |date=2003-04-01 |access-date=2011-07-19 |archive-url=https://web.archive.org/web/20090216235741/http://news.bbc.co.uk/1/hi/uk/2905953.stm |archive-date=2009-02-16 |url-status=live}}</ref> By January 2007, only 2% of computers sold in stores contained built-in floppy disk drives.<ref name="PCW">{{cite news |last=Derbyshire |first=David |url=https://www.telegraph.co.uk/news/uknews/1540984/Floppy-disks-ejected-as-demand-slumps.html |title=Floppy disks ejected as demand slumps |publisher=[[The Daily Telegraph]] |date=2007-01-30 |access-date=2011-07-19 |archive-url=https://web.archive.org/web/20110522070711/http://www.telegraph.co.uk/news/uknews/1540984/Floppy-disks-ejected-as-demand-slumps.html |archive-date=2011-05-22 |url-status=live}}</ref>
===Use in the early 21st century===
[[File:Floppy hardware emulator.jpg|thumb|left|A [[Floppy disk hardware emulator|floppy hardware emulator]], same size as a {{frac|3|1|2}}-inch drive, provides a USB interface to the user]]By 2002, most manufacturers still provided floppy disk drives as standard equipment to meet user demand for [[Sneakernet|file-transfer]] and an emergency boot device, as well as for the general secure feeling of having the familiar device.<ref>{{cite web |author-last=Spring |author-first=Tom |url=http://www.pcworld.com/article/103037/what_has_your_floppy_drive_done_for_you_lately.html |title=What Has Your Floppy Drive Done for You Lately? PC makers are still standing by floppy drives despite vanishing consumer demand. |publisher=[[PC World]] |date=2002-07-24 |access-date=2012-04-04 |url-status=dead |archive-url=https://web.archive.org/web/20111224033044/http://www.pcworld.com/article/103037/what_has_your_floppy_drive_done_for_you_lately.html |archive-date=2011-12-24 }}</ref> By this time, the retail cost of a floppy drive had fallen to around $20, so there was little financial incentive to omit the device from a system. Subsequently, enabled by the widespread support for USB flash drives and BIOS boot, manufacturers and retailers progressively reduced the availability of floppy disk drives as standard equipment. In February 2003, [[Dell]], a leading computer company at the time, announced that floppy drives would no longer be pre-installed on [[Dell Dimension]] home computers, although they were still available as a selectable option and purchasable as an aftermarket [[Original equipment manufacturer|OEM]] add-on.<ref>{{cite web |url=http://news.bbc.co.uk/1/hi/uk/2905953.stm |title=R.I.P. Floppy Disk |work=[[BBC News]] |date=2003-04-01 |access-date=2011-07-19 |archive-url=https://web.archive.org/web/20090216235741/http://news.bbc.co.uk/1/hi/uk/2905953.stm |archive-date=2009-02-16 |url-status=live }}</ref> By January 2007, only 2% of computers sold in stores contained built-in floppy disk drives.<ref name="PCW">{{cite news |author-last=Derbyshire |author-first=David |url=https://www.telegraph.co.uk/news/uknews/1540984/Floppy-disks-ejected-as-demand-slumps.html |title=Floppy disks ejected as demand slumps |publisher=[[The Daily Telegraph]] |date=2007-01-30 |access-date=2011-07-19 |archive-url=https://web.archive.org/web/20110522070711/http://www.telegraph.co.uk/news/uknews/1540984/Floppy-disks-ejected-as-demand-slumps.html |archive-date=2011-05-22 |url-status=live }}</ref>


Floppy disks are used for emergency boots in aging systems lacking support for other [[boot disk|bootable media]] and for [[BIOS]] updates, since most BIOS and [[firmware]] programs can still be executed from [[Boot disk#Boot floppies|bootable floppy disks]]. If BIOS updates fail or become corrupt, floppy drives can sometimes be used to perform a recovery. The music and theatre industries still use equipment requiring standard floppy disks (e.g. synthesizers, samplers, drum machines, sequencers, and [[lighting control console|lighting consoles]]). Industrial automation equipment such as programmable [[Machine industry|machinery]] and [[industrial robot]]s may not have a USB interface; data and programs are then loaded from disks, damageable in industrial environments. This equipment may not be replaced due to cost or requirement for continuous availability; existing software emulation and [[virtualization]] do not solve this problem because a customized operating system is used that has no [[device driver|drivers]] for USB devices. [[Floppy disk hardware emulator|Hardware floppy disk emulators]] can be made to interface [[floppy-disk controller]]s to a USB port that can be used for flash drives.
Floppy disks are used for emergency boots in aging systems lacking support for other [[boot disk|bootable media]] and for [[BIOS]] updates, since most BIOS and [[firmware]] programs can still be executed from [[Boot disk#Boot floppies|bootable floppy disks]]. If BIOS updates fail or become corrupt, floppy drives can sometimes be used to perform a recovery. The music and theatre industries still use equipment requiring standard floppy disks (e.g. synthesizers, samplers, drum machines, sequencers, and [[lighting control console|lighting consoles]]). Industrial automation equipment such as programmable [[Machine industry|machinery]] and [[industrial robot]]s may not have a USB interface; data and programs are then loaded from disks, damageable in industrial environments. This equipment may not be replaced due to cost or requirement for continuous availability; existing software emulation and [[virtualization]] do not solve this problem because a customized operating system is used that has no [[device driver|drivers]] for USB devices. [[Floppy disk hardware emulator|Hardware floppy disk emulators]] can be made to interface [[floppy-disk controller]]s to a USB port that can be used for flash drives.


In May 2016, the United States [[Government Accountability Office]] released a report that covered the need to upgrade or replace legacy computer systems within federal agencies. According to this document, old [[IBM Series/1]] minicomputers running on [[#8.0|8-inch floppy disk]]s are still [[nuclear command and control|used to coordinate]] "the operational functions of the United States' nuclear forces". The government planned to update some of the technology by the end of the 2017 fiscal year.<ref name=":0">{{Cite web |url=http://www.gao.gov/assets/680/677436.pdf |title=Federal Agencies Need to Address Aging Legacy Systems |date=May 2016 |website=Report to Congressional Requesters |publisher=United States Government Accountability Office |access-date=2016-05-26 |archive-url=https://web.archive.org/web/20160602113649/http://www.gao.gov/assets/680/677436.pdf |archive-date=2016-06-02 |url-status=live }}</ref><ref name="thehill-20160525">{{cite news |url=http://thehill.com/policy/technology/281191-us-nuclear-emergency-messaging-system-still-uses-floppy-disks |title=US nuclear emergency messaging system still uses floppy disks |author-first=Mario |author-last=Trujillo |newspaper=The Hill |date=2016-05-25 |access-date=2016-05-30 |archive-url=https://web.archive.org/web/20160529100524/http://thehill.com/policy/technology/281191-us-nuclear-emergency-messaging-system-still-uses-floppy-disks |archive-date=2016-05-29 |url-status=live }}</ref>
In May 2016, the United States [[Government Accountability Office]] released a report that covered the need to upgrade or replace legacy computer systems within federal agencies. According to this document, old [[IBM Series/1]] minicomputers running on [[#8.0|8-inch floppy disk]]s are still [[nuclear command and control|used to coordinate]] "the operational functions of the United States' nuclear forces". The government planned to update some of the technology by the end of the 2017 fiscal year.<ref name=":0">{{Cite web |url=http://www.gao.gov/assets/680/677436.pdf |title=Federal Agencies Need to Address Aging Legacy Systems |date=May 2016 |website=Report to Congressional Requesters |publisher=United States Government Accountability Office |access-date=2016-05-26 |archive-url=https://web.archive.org/web/20160602113649/http://www.gao.gov/assets/680/677436.pdf |archive-date=2016-06-02 |url-status=live}}</ref><ref name="thehill-20160525">{{cite news |first=Mario |last=Trujillo |work=The Hill |date=2016-05-25 |url=https://thehill.com/policy/technology/281191-us-nuclear-emergency-messaging-system-still-uses-floppy-disks/ |title=US nuclear emergency messaging system still uses floppy disks |access-date=2016-05-30 |url-status=live |archive-url=https://web.archive.org/web/20160529100524/http://thehill.com/policy/technology/281191-us-nuclear-emergency-messaging-system-still-uses-floppy-disks |archive-date=2016-05-29}}</ref>


External USB floppy drives function as a [[USB Mass Storage Device Class|USB Mass Storage Device]]. Windows 10 removed the driver for internal floppy drives, which are a different device. External USB floppy drives continue to function.<ref>{{Cite web|url = https://www.thewindowsclub.com/use-floppy-disk-windows-10|title = How to use Floppy Disk on Windows 10|date = 2016-03-09|access-date = 2019-06-11|archive-url = https://web.archive.org/web/20181117134806/https://www.thewindowsclub.com/use-floppy-disk-windows-10|archive-date = 2018-11-17|url-status = live}}</ref>
[[Windows 10]] and [[Windows 11]] no longer come with drivers for floppy disk drives (both internal and external). However, they will still support them with a separate device driver provided by Microsoft.<ref>{{Cite web |url=https://www.thewindowsclub.com/use-floppy-disk-windows-10 |title=How to use Floppy Disk on Windows 10 |date=2016-03-09 |access-date=2019-06-11 |url-status=live |archive-url=https://web.archive.org/web/20181117134806/https://www.thewindowsclub.com/use-floppy-disk-windows-10 |archive-date=2018-11-17}}</ref>


The [[British Airways]] [[Boeing 747-400]] fleet, up to its retirement in 2020, used 3.5 inch floppy disks to load avionics software.<ref>[https://www.theverge.com/2020/8/11/21363122/boeing-747s-floppy-disc-updates-critical-software?utm_source=pocket-newtab]</ref>
The [[British Airways]] [[Boeing 747-400]] fleet, up to its retirement in 2020, used 3½-inch floppy disks to load avionics software.<ref>{{cite news |last=Warren |first=Tom |date=August 11, 2020 |title=Boeing 747s still get critical updates via floppy disks: A rare look inside a 20-year-old airliner |url=https://www.theverge.com/2020/8/11/21363122/boeing-747s-floppy-disc-updates-critical-software |website=[[The Verge]] |publisher=Vox Media |access-date=2021-02-26}}</ref>

Sony, who had been in the floppy disk business since 1983, ended domestic sales of all six 3½-inch floppy disk models as of March 2011.<ref>{{cite web|url=https://www.sony.jp/rec-media/info/20100423.html|title=Notice of Termination of Sales of 3.5-inch Floppy Disks|date=April 23, 2010|access-date=September 14, 2022}}</ref> This has been viewed by some as the end of the floppy disk.<ref>{{cite magazine|url=https://www.wired.com/2010/04/sony-announces-the-death-of-the-floppy-disk/#:~:text=Fully%2012%20years%20after%20the,that%20it%20took%20so%20long.|title=Sony Announces the Death of the Floppy Disk|last=SORREL|first=CHARLIE |magazine=Wired |date=April 26, 2010|access-date=September 14, 2022}}</ref> While production of new floppy disk media has ceased,<ref>{{cite web|url=https://www.theregister.com/2022/09/20/floppy_disk_business/ |title='Last man standing in the floppy disk business' reckons his company has 4 years left |last=Robinson |first=Dan |date=September 20, 2022 |publisher=The Register|access-date=September 23, 2022}}</ref> sales and uses of this media from inventories is expected to continue until at least 2026.<ref name="Til2026">{{cite web|url=https://eyeondesign.aiga.org/we-spoke-with-the-last-person-standing-in-the-floppy-disk-business/|title=We Spoke With the Last Person Standing in the Floppy Disk Business|last1=Hilkmann|first1=Niek|last2=Walskaar|first2=Thomas|date=September 12, 2022|access-date=September 14, 2022|quote=Turns out the obsolete floppy is way more in demand than you'd think. ... I expect to be in this business for at least another four years.}}</ref>


===Legacy===
===Legacy===
[[File:Save Icon in Open Office.png|thumb|right|Screenshot depicting a floppy disk as "save" icon]]
[[File:Save Icon in Open Office.png|thumb|right|Screenshot depicting a floppy disk as "save" icon]]For more than two decades, the floppy disk was the primary external writable storage device used. Most computing environments before the 1990s were non-networked, and floppy disks were the primary means of transferring data between computers, a method known informally as [[sneakernet]]. Unlike hard disks, floppy disks are handled and seen; even a novice user can identify a floppy disk. Because of these factors, a picture of a {{frac|3|1|2}}-inch floppy disk became an [[interface metaphor]] for saving data. The floppy disk symbol is still used by software on user-interface elements related to saving files, such as the release of [[Microsoft Office 2019]], even though the physical floppy disks are largely obsolete.<ref name="Landphair">{{cite news|date=2007-03-10|title=So Long, Faithful Floppies|work=VOA News|publisher=Voice of America|url=http://www.voanews.com/content/a-13-2007-03-10-voa3-66771407/564323.html|url-status=dead|access-date=2008-12-25|archive-url=https://web.archive.org/web/20161010215401/http://www.voanews.com/a/a-13-2007-03-10-voa3-66771407/564323.html|archive-date=October 10, 2016|author-first=Ted|author-last=Landphair}}</ref>

For more than two decades, the floppy disk was the primary external writable storage device used. Most computing environments before the 1990s were non-networked, and floppy disks were the primary means to transfer data between computers, a method known informally as [[sneakernet]]. Unlike hard disks, floppy disks are handled and seen; even a novice user can identify a floppy disk. Because of these factors, a picture of a 3½-inch floppy disk became an [[interface metaphor]] for saving data. The floppy disk [[skeuomorph|symbol]] is still used by software on user-interface elements related to saving files (such as [[LibreOffice]]) even though physical floppy disks are largely obsolete.<ref name="Til2026" />


==Design==
==Design==
===Structure===
===Structure===
====8-inch and {{frac|5|1|4}}-inch disks====
====8-inch and 5¼-inch disks====
[[File:8-inch floppy disk - IZOT, Bulgaria - inside.jpg|right|thumb|Inside the 8-inch floppy disk]]
[[File:8-inch floppy disk - IZOT, Bulgaria - inside.jpg|right|thumb|The inside of a destructively disassembled 8-inch floppy disk]]
[[File:Squareholepunch2.png|thumb|upright|Disk notcher [[flippy disk|converts single-sided {{frac|5|1|4}}-inch diskettes to double-sided]].]]
[[File:Squareholepunch2.png|thumb|upright|A disk notcher punch, which could make read-only 5¼" floppies writable, and [[flippy disk|convert certain single-sided 5¼-inch diskettes to double-sided]], by adding cutouts drives expected to sense.]]
The 8-inch and {{frac|5|1|4}}-inch floppy disks contain a magnetically coated round plastic medium with a large circular hole in the center for a drive's spindle. The medium is contained in a square plastic cover that has a small oblong opening in both sides to allow the drive's heads to read and write data and a large hole in the center to allow the magnetic medium to spin by rotating it from its middle hole.
The 8-inch and 5¼-inch floppy disks contain a magnetically coated round plastic medium with a large circular hole in the center for a drive's spindle. The medium is contained in a square plastic cover that has a small oblong opening in both sides to allow the drive's heads to read and write data and a large hole in the center to allow the magnetic medium to spin by rotating it from its middle hole.


Inside the cover are two layers of fabric with the magnetic medium sandwiched in the middle. The fabric is designed to reduce friction between the medium and the outer cover, and catch particles of debris abraded off the disk to keep them from accumulating on the heads. The cover is usually a one-part sheet, double-folded with flaps glued or spot-welded together.
Inside the cover are two layers of fabric with the magnetic medium sandwiched in the middle. The fabric is designed to reduce friction between the medium and the outer cover, and catch particles of debris abraded off the disk to keep them from accumulating on the heads. The cover is usually a one-part sheet, double-folded with flaps glued or spot-welded together.


A small notch on the side of the disk identifies that it is writable, detected by a mechanical switch or [[phototransistor]] above it; if it is not present, the disk can be written; in the 8-inch disk the notch is covered to enable writing while in the {{frac|5|1|4}}-inch disk the notch is open to enable writing. Tape may be used over the notch to change the mode of the disk. Punch devices were sold to convert read-only disks to writable ones and enable writing on the unused side of single sided disks; such modified disks became known as [[flippy disk]]s.
A small notch on the side of the disk identifies whether it is writable, as detected by a mechanical switch or [[photoelectric sensor]]. In the 8-inch disk, the notch being covered or not present enables writing, while in the 5¼-inch disk, the notch being present and uncovered enables writing. Tape may be used over the notch to change the mode of the disk. Punch devices were sold to convert read-only 5¼" disks to writable ones, and also to enable writing on the unused side of single-sided disks for computers with single-sided drives. The latter worked because single- and double-sided disks typically contained essentially identical actual magnetic media, for manufacturing efficiency. Disks whose obverse and reverse sides were thus used separately in single-sided drives were known as [[flippy disk]]s. Disk notching 5¼" floppies for PCs was generally only required where users wanted to overwrite original 5¼" disks of store-bought software, which somewhat commonly shipped with no notch present.


Another LED/photo-transistor pair located near the center of the disk detects the ''index hole'' once per rotation in the magnetic disk; it is used to detect the angular start of each track and whether or not the disk is rotating at the correct speed. Early 8‑inch and {{frac|5|1|4}}‑inch disks had physical holes for each sector and were termed ''[[hard sectoring|hard sectored]]'' disks. Later ''soft-[[Disk sector|sectored]]'' disks have only one index hole, and sector position is determined by the disk controller or low-level software from patterns marking the start of a sector. Generally, the same drives are used to read and write both types of disks, with only the disks and controllers differing. Some operating systems utilizing soft sectors, such as [[Apple DOS]], do not use the index hole, and the drives designed for such systems often lack the corresponding sensor; this was mainly a hardware cost-saving measure.<ref>{{cite web |url=https://apple2history.org/history/ah05/ |title=The Disk II |website=Apple II History |access-date=2018-02-17 |quote=Wozniak’s technique would allow the drive to do self-synchronization (“soft sectoring”), not have to deal with that little timing hole, and save on hardware. |date=2008-12-02 |archive-url=https://web.archive.org/web/20180219091809/https://apple2history.org/history/ah05/ |archive-date=2018-02-19 |url-status=dead }}</ref>
Another LED/photo-transistor pair located near the center of the disk detects the ''index hole'' once per rotation in the magnetic disk. Detection occurs whenever the drive's sensor, the holes in the correctly inserted floppy's plastic envelope and a single hole in the rotating floppy disk medium line up. This mechanism is used to detect the angular start of each track, and whether or not the disk is rotating at the correct speed. Early 8‑inch and 5¼‑inch disks also had holes for each sector in the enclosed magnetic medium, in addition to the index hole,<ref>https://retrocmp.de/fdd/diskette/diskette.htm#hardsoft</ref> with the same [[radial distance]] from the center, for alignment with the same envelope hole. These were termed ''[[hard sectoring|hard sectored]]'' disks. Later ''soft-[[Disk sector|sectored]]'' disks have only one index hole in the medium, and sector position is determined by the disk controller or low-level software from patterns marking the start of a sector. Generally, the same drives are used to read and write both types of disks, with only the disks and controllers differing. Some operating systems using soft sectors, such as [[Apple DOS]], do not use the index hole, and the drives designed for such systems often lack the corresponding sensor; this was mainly a hardware cost-saving measure.<ref>{{cite web |url=https://apple2history.org/history/ah05/ |title=The Disk II |date=2008-12-02 |website=Apple II History |access-date=2018-02-17 |quote=Wozniak's technique would allow the drive to do self-synchronization ("soft sectoring"), not have to deal with that little timing hole, and save on hardware. |url-status=dead |archive-url=https://web.archive.org/web/20180219091809/https://apple2history.org/history/ah05/ |archive-date=2018-02-19}}</ref>


===={{frac|3|1|2}}-inch disk====
====3½-inch disk====


[[File:Back of floppy disk with transparent case.jpg|thumb|Rear side of a {{frac|3|1|2}}-inch floppy disk in a transparent case, showing its internal parts]]
[[File:Back of floppy disk with transparent case.jpg|thumb|Rear side of a 3½-inch floppy disk in a transparent case, showing its internal parts]]


The core of the {{frac|3|1|2}}-inch disk is the same as the other two disks, but the front has only a label and a small opening for reading and writing data, protected by the shutter—a spring-loaded metal or plastic cover, pushed to the side on entry into the drive. Rather than having a hole in the center, it has a metal hub which mates to the spindle of the drive. Typical {{frac|3|1|2}}-inch disk magnetic coating materials are:<ref name="SCS_2007">{{cite web |url=http://www.hardware-bastelkiste.de/floppy.html |title=Floppy-Disketten-Laufwerke |trans-title=Floppy disk drives |access-date=2017-06-19 |author=(M)Tronics SCS |language=de |date=2007-05-20 |url-status=dead |archive-url=https://web.archive.org/web/20170619194609/http://www.hardware-bastelkiste.de/index.html?floppy.html |archive-date=2017-06-19 }}</ref>
The core of the 3½-inch disk is the same as the other two disks, but the front has only a label and a small opening for reading and writing data, protected by the shutter—a spring-loaded metal or plastic cover, pushed to the side on entry into the drive. Rather than having a hole in the center, it has a metal hub which mates to the spindle of the drive. Typical 3½-inch disk magnetic coating materials are:<ref name="SCS_2007">{{cite web |url=http://www.hardware-bastelkiste.de/floppy.html |title=Floppy-Disketten-Laufwerke |trans-title=Floppy disk drives |access-date=2017-06-19 |author=(M)Tronics SCS |language=de |date=2007-05-20 |url-status=dead |archive-url=https://web.archive.org/web/20170619194609/http://www.hardware-bastelkiste.de/index.html?floppy.html |archive-date=2017-06-19}}</ref>


* DD: 2&nbsp;µm magnetic [[iron oxide]]
* DD: 2&nbsp;μm magnetic [[iron oxide]]
* HD: 1.2&nbsp;µm [[cobalt]]-doped iron oxide
* HD: 1.2&nbsp;μm [[cobalt]]-doped iron oxide
* ED: 3&nbsp;µm [[barium ferrite]]
* ED: 3&nbsp;μm [[barium ferrite]]


Two holes at the bottom left and right indicate whether the disk is write-protected and whether it is high-density; these holes are spaced as far apart as the holes in punched [[A4 paper size|A4]] paper, allowing write-protected high-density floppies to be clipped into standard [[ring binder]]s. The dimensions of the disk shell are not quite square: its width is slightly less than its depth, so that it is impossible to insert the disk into a drive slot sideways (i.e. rotated 90 degrees from the correct shutter-first orientation). A diagonal notch at top right ensures that the disk is inserted into the drive in the correct orientation&mdash;not upside down or label-end first&mdash;and an arrow at top left indicates direction of insertion. The drive usually has a button that, when pressed, ejects the disk with varying degrees of force, the discrepancy due to the ejection force provided by the spring of the shutter. In [[IBM PC compatible]]s, Commodores, Apple II/IIIs, and other non-Apple-Macintosh machines with standard floppy disk drives, a disk may be ejected manually at any time. The drive has a disk-change switch that detects when a disk is ejected or inserted. Failure of this mechanical switch is a common source of disk corruption if a disk is changed and the drive (and hence the operating system) fails to notice.
Two holes at the bottom left and right indicate whether the disk is write-protected and whether it is high-density; these holes are spaced as far apart as the holes in punched [[A4 paper size|A4]] paper, allowing write-protected high-density floppies to be clipped into international standard ([[ISO 838]]) [[ring binder]]s. The dimensions of the disk shell are not quite square: its width is slightly less than its depth, so that it is impossible to insert the disk into a drive slot sideways (i.e. rotated 90 degrees from the correct shutter-first orientation). A diagonal notch at top right ensures that the disk is inserted into the drive in the correct orientation—not upside down or label-end first—and an arrow at top left indicates direction of insertion. The drive usually has a button that, when pressed, ejects the disk with varying degrees of force, the discrepancy due to the ejection force provided by the spring of the shutter. In [[IBM PC compatible]]s, Commodores, Apple II/IIIs, and other non-Apple-Macintosh machines with standard floppy disk drives, a disk may be ejected manually at any time. The drive has a disk-change switch that detects when a disk is ejected or inserted. Failure of this mechanical switch is a common source of disk corruption if a disk is changed and the drive (and hence the operating system) fails to notice.


One of the chief [[usability]] problems of the floppy disk is its vulnerability; even inside a closed plastic housing, the disk medium is highly sensitive to dust, condensation and temperature extremes. As with all [[magnetic storage]], it is vulnerable to magnetic fields. Blank disks have been distributed with an extensive set of warnings, cautioning the user not to expose it to dangerous conditions. Rough treatment or removing the disk from the drive while the magnetic media is still spinning is likely to cause damage to the disk, drive head, or stored data. On the other hand, the {{frac|3|1|2}}‑inch floppy has been lauded for its mechanical usability by [[human–computer interaction]] expert [[Donald Norman]]:<ref>{{cite book |author-link=Donald Norman |author-first=Donald |author-last=Norman |title=The Design of Everyday Things |chapter=Chapter 1 |date=1990 |isbn=0-385-26774-6 |publisher=[[Doubleday (publisher)|Doubleday]] |location=New York, USA|title-link=The Design of Everyday Things }}</ref>
One of the chief [[usability]] problems of the floppy disk is its vulnerability; even inside a closed plastic housing, the disk medium is highly sensitive to dust, condensation and temperature extremes. As with all [[magnetic storage]], it is vulnerable to magnetic fields. Blank disks have been distributed with an extensive set of warnings, cautioning the user not to expose it to dangerous conditions. Rough treatment or removing the disk from the drive while the magnetic media is still spinning is likely to cause damage to the disk, drive head, or stored data. On the other hand, the 3½‑inch floppy has been lauded for its mechanical usability by [[human–computer interaction]] expert [[Donald Norman]]:<ref>{{cite book |author-link=Donald Norman |first=Donald |last=Norman |title=The Design of Everyday Things |chapter=Chapter 1 |date=1990 |isbn=0-385-26774-6 |publisher=[[Doubleday (publisher)|Doubleday]] |location=New York, US|title-link=The Design of Everyday Things}}</ref>


{{blockquote
{{quote
| "A simple example of a good design is the {{frac|3|1|2}}-inch magnetic diskette for computers, a small circle of floppy magnetic material encased in hard plastic. Earlier types of floppy disks did not have this plastic case, which protects the magnetic material from abuse and damage. A sliding metal cover protects the delicate magnetic surface when the diskette is not in use and automatically opens when the diskette is inserted into the computer. The diskette has a square shape: there are apparently eight possible ways to insert it into the machine, only one of which is correct. What happens if I do it wrong? I try inserting the disk sideways. Ah, the designer thought of that. A little study shows that the case really isn't square: it's rectangular, so you can't insert a longer side. I try backward. The diskette goes in only part of the way. Small protrusions, indentations, and cutouts prevent the diskette from being inserted backward or upside down: of the eight ways one might try to insert the diskette, only one is correct, and only that one will fit. An excellent design."
| A simple example of a good design is the 3½-inch magnetic diskette for computers, a small circle of floppy magnetic material encased in hard plastic. Earlier types of floppy disks did not have this plastic case, which protects the magnetic material from abuse and damage. A sliding metal cover protects the delicate magnetic surface when the diskette is not in use and automatically opens when the diskette is inserted into the computer. The diskette has a square shape: there are apparently eight possible ways to insert it into the machine, only one of which is correct. What happens if I do it wrong? I try inserting the disk sideways. Ah, the designer thought of that. A little study shows that the case really isn't square: it's rectangular, so you can't insert a longer side. I try backward. The diskette goes in only part of the way. Small protrusions, indentations, and cutouts prevent the diskette from being inserted backward or upside down: of the eight ways one might try to insert the diskette, only one is correct, and only that one will fit. An excellent design.
}}
}}


{{clear}}
[[File:Floppy drive spindle motor open.jpg|thumb|left|The spindle motor from a {{frac|3|1|2}}‑inch unit]]

[[File:Citizen W1D-9364 - read write head-4005.jpg|thumb|A [[disk read-and-write head|read-write head]] from a {{frac|3|1|2}}‑inch unit]]
[[File:Floppy drive spindle motor open.jpg|thumb|left|The spindle motor from a 3½‑inch unit]]
[[File:Citizen W1D-9364 - read write head-4005.jpg|thumb|A [[disk read-and-write head|read-write head]] from a 3½‑inch unit]]

{{clear}}


===Operation===
===Operation===

[[File:Lecteur de disquette 2.jpg|thumb|How the read-write head is applied on the floppy]]
[[File:Lecteur de disquette 2.jpg|thumb|How the read-write head is applied on the floppy]]
[[File:Visualization of magnetic information on a Floppy Disk (CMOS-MagView).jpg|thumb|left|Visualization of magnetic information on floppy disk (image recorded with CMOS-MagView)]]A spindle motor in the drive rotates the magnetic medium at a certain speed, while a stepper motor-operated mechanism moves the magnetic read/write heads radially along the surface of the disk. Both read and write operations require the media to be rotating and the head to contact the disk media, an action originally accomplished by a disk-load solenoid.<ref>{{cite web|date=2005|editor-last=Porter|editor-first=Jim|title=Oral History Panel on 8 inch Floppy Disk Drives|url=http://archive.computerhistory.org/resources/text/Oral_History/8_inch_Floppy_Drive/8_inch_Floppy_Drive.oral_history.2005.102657926.pdf|url-status=dead|archive-url=https://web.archive.org/web/20150513110507/http://archive.computerhistory.org/resources/text/Oral_History/8_inch_Floppy_Drive/8_inch_Floppy_Drive.oral_history.2005.102657926.pdf|archive-date=2015-05-13|access-date=2011-06-22|page=4}}</ref> Later drives held the heads out of contact until a front-panel lever was rotated ({{frac|5|1|4}}-inch) or disk insertion was complete ({{frac|3|1|2}}-inch). To write data, current is sent through a coil in the head as the media rotates. The head's magnetic field aligns the magnetization of the particles directly below the head on the media. When the current is reversed the magnetization aligns in the opposite direction, encoding one bit of data. To read data, the magnetization of the particles in the media induce a tiny voltage in the head coil as they pass under it. This small signal is amplified and sent to the [[floppy disk controller]], which converts the streams of pulses from the media into data, checks it for errors, and sends it to the host computer system.


[[File:Visualization of magnetic information on a Floppy Disk (CMOS-MagView).jpg|thumb|left|Visualization of magnetic information on floppy disk (image recorded with CMOS-MagView)]]
==== Formatting ====

{{main|Disk formatting}}
{{clear}}

A spindle motor in the drive rotates the magnetic medium at a certain speed, while a stepper motor-operated mechanism moves the magnetic read/write heads radially along the surface of the disk. Both read and write operations require the media to be rotating and the head to contact the disk media, an action originally accomplished by a disk-load solenoid.<ref>{{cite web|date=2005|editor-last=Porter|editor-first=Jim|title=Oral History Panel on 8 inch Floppy Disk Drives|url=http://archive.computerhistory.org/resources/text/Oral_History/8_inch_Floppy_Drive/8_inch_Floppy_Drive.oral_history.2005.102657926.pdf|url-status=dead|archive-url=https://web.archive.org/web/20150513110507/http://archive.computerhistory.org/resources/text/Oral_History/8_inch_Floppy_Drive/8_inch_Floppy_Drive.oral_history.2005.102657926.pdf|archive-date=2015-05-13|access-date=2011-06-22|page=4}}</ref> Later drives held the heads out of contact until a front-panel lever was rotated (5¼-inch) or disk insertion was complete (3½-inch). To write data, current is sent through a coil in the head as the media rotates. The head's magnetic field aligns the magnetization of the particles directly below the head on the media. When the current is reversed the magnetization aligns in the opposite direction, encoding one bit of data. To read data, the magnetization of the particles in the media induce a tiny voltage in the head coil as they pass under it. This small signal is amplified and sent to the [[floppy disk controller]], which converts the streams of pulses from the media into data, checks it for errors, and sends it to the host computer system.

====Formatting====
{{Main|Disk formatting}}
A blank unformatted diskette has a coating of magnetic oxide with no magnetic order to the particles. During formatting, the magnetizations of the particles are aligned forming tracks, each broken up into [[disk sector|sectors]], enabling the controller to properly read and write data. The tracks are concentric rings around the center, with spaces between tracks where no data is written; gaps with padding bytes are provided between the sectors and at the end of the track to allow for slight speed variations in the disk drive, and to permit better interoperability with disk drives connected to other similar systems.
A blank unformatted diskette has a coating of magnetic oxide with no magnetic order to the particles. During formatting, the magnetizations of the particles are aligned forming tracks, each broken up into [[disk sector|sectors]], enabling the controller to properly read and write data. The tracks are concentric rings around the center, with spaces between tracks where no data is written; gaps with padding bytes are provided between the sectors and at the end of the track to allow for slight speed variations in the disk drive, and to permit better interoperability with disk drives connected to other similar systems.


Line 109: Line 127:
Some errors are [[soft error|soft]] and can be resolved by automatically re-trying the read operation; other errors are permanent and the disk controller will signal a failure to the operating system if multiple attempts to read the data still fail.
Some errors are [[soft error|soft]] and can be resolved by automatically re-trying the read operation; other errors are permanent and the disk controller will signal a failure to the operating system if multiple attempts to read the data still fail.


==== Insertion and ejection ====
====Insertion and ejection====
After a disk is inserted, a catch or lever at the front of the drive is manually lowered to prevent the disk from accidentally emerging, engage the spindle clamping hub, and in two-sided drives, engage the second read/write head with the media.
After a disk is inserted, a catch or lever at the front of the drive is manually lowered to prevent the disk from accidentally emerging, engage the spindle clamping hub, and in two-sided drives, engage the second read/write head with the media.


In some {{frac|5|1|4}}-inch drives, insertion of the disk compresses and locks an ejection spring which partially ejects the disk upon opening the catch or lever. This enables a smaller concave area for the thumb and fingers to grasp the disk during removal.
In some 5¼-inch drives, insertion of the disk compresses and locks an ejection spring which partially ejects the disk upon opening the catch or lever. This enables a smaller concave area for the thumb and fingers to grasp the disk during removal.


Newer {{frac|5|1|4}}-inch drives and all {{frac|3|1|2}}-inch drives automatically engage the spindle and heads when a disk is inserted, doing the opposite with the press of the eject button.
Newer 5¼-inch drives and all 3½-inch drives automatically engage the spindle and heads when a disk is inserted, doing the opposite with the press of the eject button.


On [[Apple Macintosh]] computers with built-in floppy drives, the ejection button is replaced by software controlling an ejection motor which only does so when the operating system no longer needs to access the drive. The user could drag the image of the floppy drive to the trash can on the desktop to eject the disk. In the case of a power failure or drive malfunction, a loaded disk can be removed manually by inserting a straightened [[paper clip]] into a small hole at the drive's front panel, just as one would do with a [[CD-ROM]] drive in a similar situation.
On Apple [[Mac (computer)|Macintosh]] computers with built-in 3½-inch disk drives, the ejection button is replaced by software controlling an ejection motor which only does so when the operating system no longer needs to access the drive. The user could drag the image of the floppy drive to the trash can on the desktop to eject the disk. In the case of a power failure or drive malfunction, a loaded disk can be removed manually by inserting a straightened [[paper clip]] into a small hole at the drive's front panel, just as one would do with a [[CD-ROM]] drive in a similar situation. The [[Sharp X68000]] featured soft-eject 5¼-inch drives. Some late-generation [[IBM PS/2]] machines had soft-eject 3½-inch disk drives as well for which some issues of [[DOS]] (i.e. [[PC DOS 5.02]] and higher) offered an [[EJECT (DOS command)|EJECT]] command.


==== Finding track zero ====
====Finding track zero====
Before a disk can be accessed, the drive needs to synchronize its head position with the disk tracks. In some drives, this is accomplished with a Track Zero Sensor, while for others it involves the drive head striking an immobile reference surface.
Before a disk can be accessed, the drive needs to synchronize its head position with the disk tracks. In some drives, this is accomplished with a Track Zero Sensor, while for others it involves the drive head striking an immobile reference surface.


In either case, the head is moved so that it is approaching track zero position of the disk. When a drive with the sensor has reached track zero, the head stops moving immediately and is correctly aligned. For a drive without the sensor, the mechanism attempts to move the head the maximum possible number of positions needed to reach track zero, knowing that once this motion is complete, the head will be positioned over track zero.
In either case, the head is moved so that it is approaching track zero position of the disk. When a drive with the sensor has reached track zero, the head stops moving immediately and is correctly aligned. For a drive without the sensor, the mechanism attempts to move the head the maximum possible number of positions needed to reach track zero, knowing that once this motion is complete, the head will be positioned over track zero.


Some drive mechanisms such as the Apple II {{frac|5|1|4}}-inch drive without a track zero sensor, produce characteristic mechanical noises when trying to move the heads past the reference surface. This physical striking is responsible for the {{frac|5|1|4}}-inch drive clicking during the boot of an Apple II, and the loud rattles of its DOS and ProDOS when disk errors occurred and track zero synchronization was attempted.
Some drive mechanisms such as the Apple II 5¼-inch drive without a track zero sensor, produce characteristic mechanical noises when trying to move the heads past the reference surface. This physical striking is responsible for the 5¼-inch drive clicking during the boot of an Apple II, and the loud rattles of its DOS and ProDOS when disk errors occurred and track zero synchronization was attempted.


==== Finding sectors ====
====Finding sectors====
All 8 inch and some {{frac|5|1|4}}-inch drives used a mechanical method to locate sectors, known as either ''hard sectors'' or ''soft sectors'', and is the purpose of the small hole in the jacket, off to the side of the spindle hole. A light beam sensor detects when a punched hole in the disk is visible through the hole in the jacket.
All 8-inch and some 5¼-inch drives used a mechanical method to locate sectors, known as either ''hard sectors'' or ''soft sectors'', and is the purpose of the small hole in the jacket, off to the side of the spindle hole. A light beam sensor detects when a punched hole in the disk is visible through the hole in the jacket.


For a soft-sectored disk, there is only a single hole, which is used to locate the first sector of each track. Clock timing is then used to find the other sectors behind it, which requires precise speed regulation of the drive motor.
For a soft-sectored disk, there is only a single hole, which is used to locate the first sector of each track. Clock timing is then used to find the other sectors behind it, which requires precise speed regulation of the drive motor.
Line 134: Line 152:
The Apple II computer system is notable in that it did not have an index hole sensor and ignored the presence of hard or soft sectoring. Instead, it used special repeating data synchronization patterns written to the disk between each sector, to assist the computer in finding and synchronizing with the data in each track.
The Apple II computer system is notable in that it did not have an index hole sensor and ignored the presence of hard or soft sectoring. Instead, it used special repeating data synchronization patterns written to the disk between each sector, to assist the computer in finding and synchronizing with the data in each track.


The later {{frac|3|1|2}}-inch drives of the mid-1980s did not use sector index holes, but instead also used synchronization patterns.
The later 3½-inch drives of the mid-1980s did not use sector index holes, but instead also used synchronization patterns.


Most {{frac|3|1|2}}-inch drives used a constant speed drive motor and contain the same number of sectors across all tracks. In order to fit more data onto a disk, some {{frac|3|1|2}}-inch drives instead use variable speed drive motor than spins more slowly as the head moves away from the center of the disk. This allows more consecutive sectors to be written to the longer middle and outer tracks as the track length increases.
Most 3½-inch drives used a constant speed drive motor and contain the same number of sectors across all tracks. This is sometimes referred to as [[Constant Angular Velocity]] (CAV). In order to fit more data onto a disk, some 3½-inch drives (notably the [[Macintosh External Disk Drive|Macintosh External 400K and 800K drives]]) instead use [[Constant Linear Velocity]] (CLV), which uses a variable speed drive motor that spins more slowly as the head moves away from the center of the disk, maintaining the same speed of the head(s) relative to the surface(s) of the disk. This allows more sectors to be written to the longer middle and outer tracks as the track length increases.


==Sizes==
==Sizes==
{{main|Floppy disk format|List of floppy disk formats}}
{{Main|Floppy disk format|List of floppy disk formats}}


While the original IBM 8-inch disk was actually so defined, the other sizes are defined in the metric system, their usual names being but rough approximations.{{Refn | {{Citation | title = X3.162 | date = 1994 | publisher = ANSI | url = https://webstore.ansi.org/Standards/INCITS/ANSIX31621988R1994 | quote = Information Systems – Unformatted Flexible Disk Cartridge for Information Interchange, 5.25 in (130 mm), 96 Tracks per inch (3.8 Tracks per Millimeter), General, Physical, and Magnetic Requirements (includes ANSI X3.162/TC-1-1995) Specifies the general, physical, and magnetic requirements for interchangeability for the two-sided, 5.25 in (130 mm) flexible disk cartridge | access-date = 28 February 2022 | archive-date = 28 February 2022 | archive-url = https://web.archive.org/web/20220228185002/https://webstore.ansi.org/Standards/INCITS/ANSIX31621988R1994 | url-status = dead }}}}
Different sizes of floppy disks are mechanically incompatible, and disks can fit only one size of drive. Drive assemblies with both {{frac|3|1|2}}-inch and {{frac|5|1|4}}-inch slots were available during the transition period between the sizes, but they contained two separate drive mechanisms. In addition, there are many subtle, usually software-driven incompatibilities between the two. {{frac|5|1|4}}-inch disks formatted for use with Apple II computers would be unreadable and treated as unformatted on a Commodore. As [[computer platforms]] began to form, attempts were made at interchangeability. For example, the "[[SuperDrive]]" included from the [[Macintosh SE]] to the [[Power Macintosh G3]] could read, write and format IBM PC format {{frac|3|1|2}}-inch disks, but few IBM-compatible computers had drives that did the reverse. 8-inch, {{frac|5|1|4}}-inch and {{frac|3|1|2}}-inch drives were manufactured in a variety of sizes, most to fit standardized [[drive bay]]s. Alongside the common disk sizes were [[floppy disk variants|non-classical sizes]] for specialized systems.

Different sizes of floppy disks are mechanically incompatible, and disks can fit only one size of drive. Drive assemblies with both 3½-inch and 5¼-inch slots were available during the transition period between the sizes, but they contained two separate drive mechanisms. In addition, there are many subtle, usually software-driven incompatibilities between the two. 5¼-inch disks formatted for use with Apple II computers would be unreadable and treated as unformatted on a Commodore. As [[computer platforms]] began to form, attempts were made at interchangeability. For example, the "[[SuperDrive]]" included from the [[Macintosh SE]] to the [[Power Macintosh G3]] could read, write and format IBM PC format 3½-inch disks, but few IBM-compatible computers had drives that did the reverse. 8-inch, 5¼-inch and 3½-inch drives were manufactured in a variety of sizes, most to fit standardized [[drive bay]]s. Alongside the common disk sizes were [[floppy disk variants|non-classical sizes]] for specialized systems.


==={{anchor|8.0}}8-inch floppy disk===
==={{anchor|8.0}}8-inch floppy disk===
[[File:8-inch floppy disk - IZOT, Bulgaria.jpg|thumb|upright|8-inch floppy disk]]
[[File:8-inch floppy disk - IZOT, Bulgaria.jpg|thumb|upright|8-inch floppy disk]]


The first floppy disk was 8 inches in diameter,<ref name="Teja_1985">{{cite book |title=The Designer's Guide to Disk Drives |author-first=Edward R. |author-last=Teja |publisher=[[Reston Publishing Company, Inc.]] / [[Prentice-Hall Company]] |location=Reston, Virginia, USA |edition=1st |date=1985 |isbn=0-8359-1268-X}}</ref> was protected by a flexible plastic jacket and was a read-only device used by IBM as a way of loading microcode.<ref>{{cite web |title=Floppy Disk |url=http://grok.lsu.edu/Article.aspx?articleid=11150 |publisher=[[Louisiana State University]] |access-date=2013-12-02 |archive-url=https://web.archive.org/web/20141018004741/http://grok.lsu.edu/Article.aspx?articleid=11150 |archive-date=2014-10-18 |url-status=dead }}</ref> Read/write floppy disks and their drives became available in 1972 but it was IBM's 1973 introduction of the [[IBM 3740|3740 data entry system]]<ref>{{cite web|url=http://www-03.ibm.com/ibm/history/exhibits/rochester/rochester_4016.html|title=IBM Archives: IBM 3740|date=23 January 2003|website=www-03.ibm.com|access-date=13 October 2014|archive-url=https://web.archive.org/web/20171225162318/http://www-03.ibm.com/ibm/history/exhibits/rochester/rochester_4016.html|archive-date=25 December 2017|url-status=live}}</ref> that began the establishment of floppy disks, called by IBM the "'''Diskette 1'''", as an industry standard for information interchange. The formatted diskette for this system stored 242,944 bytes.<ref>{{Cite book|url=http://bitsavers.informatik.uni-stuttgart.de/pdf/ibm/3740/GA21-9152-2_IBM_3740_DataEntrySystem_SystemSummary_and_InstallationManual_PhysicalPlanning_Jun74.pdf|title=IBM 3740 Data Entry System System Summary and Installation Manual -Physical Planning|publisher=IBM|year=1974|pages=2|quote=The diskette is about 8" (20 cm) square and has a net capacity of 1898 128-character records -about one day's data entry activity. Each of the diskette's 73 magnetic recording tracks available for data entry can hold 26 sectors of up to 128 characters each.|access-date=2019-03-07|archive-url=https://web.archive.org/web/20170215173042/http://bitsavers.informatik.uni-stuttgart.de/pdf/ibm/3740/GA21-9152-2_IBM_3740_DataEntrySystem_SystemSummary_and_InstallationManual_PhysicalPlanning_Jun74.pdf|archive-date=2017-02-15|url-status=live}}</ref> Early [[microcomputer]]s used for engineering, business, or word processing often used one or more 8-inch disk drives for removable storage; the [[CP/M]] operating system was developed for microcomputers with 8-inch drives.
Floppy disks of the first standard are 8 inches in diameter,<ref name= "Teja_1985">{{cite book |title= The Designer's Guide to Disk Drives |first=Edward R. |last=Teja |publisher=[[Reston Publishing Company, Inc.|Reston]] / [[Prentice-Hall Company|Prentice hall]] |location=Reston, Virginia, US |edition=1st |date=1985 |isbn= 0-8359-1268-X}}</ref> protected by a flexible plastic jacket. It was a read-only device used by IBM as a way of loading microcode.<ref>{{cite web |title=Floppy Disk |url= http://grok.lsu.edu/Article.aspx?articleid=11150 |publisher=[[Louisiana State University]] |access-date= 2013-12-02 |archive-url= https://web.archive.org/web/20141018004741/http://grok.lsu.edu/Article.aspx?articleid=11150 |archive-date= 2014-10-18 |url-status=dead}}</ref> Read/write floppy disks and their drives became available in 1972, but it was IBM's 1973 introduction of the [[IBM 3740|3740 data entry system]]<ref>{{cite web|url= http://www-03.ibm.com/ibm/history/exhibits/rochester/rochester_4016.html| publisher = IBM | title = 3740 |date=23 January 2003|website= Archives |access-date= 13 October 2014|url-status= live |archive-url=https://web.archive.org/web/20171225162318/http://www-03.ibm.com/ibm/history/exhibits/rochester/rochester_4016.html|archive-date=25 December 2017}}</ref> that began the establishment of floppy disks, called by IBM the ''Diskette 1'', as an industry standard for information interchange. Formatted diskette for this system store 242,944 bytes.<ref>{{Cite book|year= 1974 | via = Stuttgart University |url= http://bitsavers.informatik.uni-stuttgart.de/pdf/ibm/3740/GA21-9152-2_IBM_3740_DataEntrySystem_SystemSummary_and_InstallationManual_PhysicalPlanning_Jun74.pdf |title=IBM 3740 Data Entry System System Summary and Installation Manual Physical Planning|publisher=IBM|page = 2 |quote=The diskette is about 8" (20 cm) square and has a net capacity of 1898 128-character records about one day's data entry activity. Each of the diskette's 73 magnetic recording tracks available for data entry can hold 26 sectors of up to 128 characters each.|access-date= 2019-03-07|archive-url=https://web.archive.org/web/20170215173042/http://bitsavers.informatik.uni-stuttgart.de/pdf/ibm/3740/GA21-9152-2_IBM_3740_DataEntrySystem_SystemSummary_and_InstallationManual_PhysicalPlanning_Jun74.pdf |archive-date=2017-02-15 |url-status=live}}</ref> Early [[microcomputer]]s used for engineering, business, or word processing often used one or more 8-inch disk drives for removable storage; the [[CP/M]] operating system was developed for microcomputers with 8-inch drives.


The family of 8-inch disks and drives increased over time and later versions could store up to 1.2&nbsp;MB;<ref>{{cite web|url=http://www.cpm.z80.de/manuals/IBM_GA21_9182_4.txt|title=The IBM Diskette General Information Manual|access-date=2014-10-13|archive-url=https://web.archive.org/web/20141028015720/http://www.cpm.z80.de/manuals/IBM_GA21_9182_4.txt|archive-date=2014-10-28|url-status=live}}</ref> many microcomputer applications did not need that much capacity on one disk, so a smaller size disk with lower-cost media and drives was feasible. The {{frac|5|1|4}}-inch drive succeeded the 8-inch size in many applications, and developed to about the same storage capacity as the original 8-inch size, using higher-density media and recording techniques.
The family of 8-inch disks and drives increased over time and later versions could store up to 1.2&nbsp;MB;<ref>{{cite web |url=http://www.cpm.z80.de/manuals/IBM_GA21_9182_4.txt |title=The IBM Diskette General Information Manual | place = [[Germany|DE]] |access-date= 2014-10-13 | publisher = Z80 |archive-url= https://web.archive.org/web/20141028015720/http://www.cpm.z80.de/manuals/IBM_GA21_9182_4.txt|archive-date=2014-10-28 |url-status=live}}</ref> many microcomputer applications did not need that much capacity on one disk, so a smaller size disk with lower-cost media and drives was feasible. The 5¼-inch drive succeeded the 8-inch size in many applications, and developed to about the same storage capacity as the original 8-inch size, using higher-density media and recording techniques.


==={{anchor|5.25|5.25-inch floppy disk}}{{frac|5|1|4}}-inch floppy disk===
==={{anchor|5.25|5.25-inch floppy disk|5¼-inch floppy disk}}-inch floppy disk===
{{multiple image
{{multiple image
|image1=5.25 inch floppy disk, front and back.jpg|width1=250
| image1 = 5.25 inch floppy disk, front and back.jpg
| width1 = 250
|caption1={{frac|5|1|4}}" floppies, front and back
| caption1 = 5¼-inch floppies, front and back
|image2=5.25 in. floppy disk drive top.jpg|width2=150
| image2 = 5.25 in. floppy disk drive top.jpg
| width2 = 150
|caption2=Uncovered {{frac|5|1|4}}‑inch disk mechanism with disk inserted.
| caption2 = Uncovered 5¼‑inch disk mechanism with disk inserted
}}
}}
The head gap of an 80‑track high-density (1.2&nbsp;MB in the [[Modified Frequency Modulation|MFM]] format) {{frac|5|1|4}}‑inch drive (a.k.a. '''Mini diskette''', '''Mini disk''', or [[Shugart Associates|Minifloppy]]) is smaller than that of a 40‑track double-density (360&nbsp;KB if double-sided) drive but can also format, read and write 40‑track disks provided the controller supports double stepping or has a switch to do so. {{frac|5|1|4}}-inch 80-track drives were also called '''hyper drives'''.<ref group="nb" name="NB_Hyperdrive"/>
The head gap of an 80‑track high-density (1.2&nbsp;MB in the [[Modified Frequency Modulation|MFM]] format) 5¼‑inch drive (a.k.a. '''Mini diskette''', '''Mini disk''', or [[Shugart Associates|Minifloppy]]) is smaller than that of a 40‑track double-density (360&nbsp;KB if double-sided) drive but can also format, read and write 40‑track disks provided the controller supports double stepping or has a switch to do so. 5¼-inch 80-track drives were also called '''hyper drives'''.<ref group="nb" name="NB_Hyperdrive"/> A blank 40‑track disk formatted and written on an 80‑track drive can be taken to its native drive without problems, and a disk formatted on a 40‑track drive can be used on an 80‑track drive. Disks written on a 40‑track drive and then updated on an 80 track drive become unreadable on any 40‑track drives due to track width incompatibility.
A blank 40‑track disk formatted and written on an 80‑track drive can be taken to its native drive without problems, and a disk formatted on a 40‑track drive can be used on an 80‑track drive. Disks written on a 40‑track drive and then updated on an 80 track drive become unreadable on any 40‑track drives due to track width incompatibility.


Single sided disks were coated on both sides, despite the availability of more expensive double sided disks. The reason usually given for the higher price was that double sided disks were certified error-free on both sides of the media. Double-sided disks could be used in some drives for single-sided disks, as long as an index signal was not needed. This was done one side at a time, by turning them over ([[flippy disk]]s); more expensive dual-head drives which could read both sides without turning over were later produced, and eventually became used universally.
Single-sided disks were coated on both sides, despite the availability of more expensive double sided disks. The reason usually given for the higher price was that double sided disks were certified error-free on both sides of the media. Double-sided disks could be used in some drives for single-sided disks, as long as an index signal was not needed. This was done one side at a time, by turning them over ([[flippy disk]]s); more expensive dual-head drives which could read both sides without turning over were later produced, and eventually became used universally.


==={{anchor|3.5|3.5-inch floppy disk|microfloppy}}{{frac|3|1|2}}-inch floppy disk===
==={{anchor|3.5|3.5-inch floppy disk|3½-inch floppy disk|microfloppy}}3½-inch floppy disk===
[[File:Floppy disk internal diagram.svg|thumb|upright|Internal parts of a {{frac|3|1|2}}‑inch floppy disk.
[[File:Floppy disk internal diagram.svg|thumb|upright|Internal parts of a 3½-inch floppy disk.
{{ordered list
<br />'''1)''' A hole that indicates a high-capacity disk.
| list_style=margin-left:0;
<br />'''2)''' The hub that engages with the drive motor.
| item_style=margin-bottom:0; list-style-position:inside;
<br />'''3)''' A shutter that protects the surface when removed from the drive.
| A hole that indicates a high-capacity disk.
<br />'''4)''' The plastic housing.
| The hub that engages with the drive motor.
<br />'''5)''' A polyester sheet reducing friction against the disk media as it rotates within the housing.
| A shutter that protects the surface when removed from the drive.
<br />'''6)''' The magnetic coated plastic disk.
| The plastic housing.
<br />'''7)''' A schematic representation of one sector of data on the disk; the tracks and sectors are not visible on actual disks.
| A polyester sheet reducing friction against the disk media as it rotates within the housing.
<br />'''8)''' The [[write protection]] tab (unlabeled) in upper left.]]
| The magnetic coated plastic disk.
| A schematic representation of one sector of data on the disk; the tracks and sectors are not visible on actual disks.
| The [[write protection]] tab (unlabeled) in upper left.
}}]]


[[File:Floppy Disk Drive SDF-321B.jpg|thumb|left|A {{frac|3|1|2}}-inch floppy disk drive.]]
[[File:Floppy Disk Drive SDF-321B.jpg|thumb|left|A 3½-inch floppy disk drive]]


In the early 1980s, a number of manufacturers introduced smaller floppy drives and media in various formats. A consortium of 21 companies eventually settled on a {{frac|3|1|2}}-inch floppy disk (actually 90&nbsp;mm wide) a.k.a. '''Micro diskette''', '''Micro disk''', or '''Micro floppy''', similar to a [[Sony]] design but improved to support both single-sided and double-sided media, with formatted capacities generally of 360&nbsp;KB and 720&nbsp;KB respectively. Single-sided drives shipped in 1983,<ref>{{cite journal |author-last=Shea |author-first=Tom |url=https://books.google.com/books?id=zS8EAAAAMBAJ&pg=PA8 |title=Shrinking drives increase storage |journal=[[InfoWorld]] |date=1983-06-13 |pages=1, 7, 8, 9, 11 |quote=Shugart is one of the major subscribers to the 3-1/2-inch micro-floppy standard, along with Sony and 20 other company... Its single-sided SA300 micro-floppy drive offers 500K of unformatted storage. Shugart's Kevin Burr said the obvious next step is to put another 500K of storage on the other side of the diskette and that the firm will come out with a double-sided 1-megabyte micro-floppy drive soon.}}</ref> and double sided in 1984. What became the most common format, the double-sided, high-density (HD) "1.44&nbsp;MB" (actually 1440&nbsp;KiB) disk drive, first shipped in 1986.<ref>{{cite book
In the early 1980s, many manufacturers introduced smaller floppy drives and media in various formats. A consortium of 21 companies eventually settled on a 3½-inch design known as the ''Micro diskette'', ''Micro disk'', or ''Micro floppy'', similar to a [[Sony]] design but improved to support both single-sided and double-sided media, with formatted capacities generally of 360&nbsp;KB and 720&nbsp;KB respectively. Single-sided drives of the consortium design first shipped in 1983,<ref>{{cite news |last=Shea |first=Tom |date=1983-06-13 |url=https://books.google.com/books?id=zS8EAAAAMBAJ&pg=PA8 |title=Shrinking drives increase storage |work=[[InfoWorld]] |pages=1, 7, 8, 9, 11 |quote=Shugart is one of the major subscribers to the 3{{citefrac|1|2}}-inch micro-floppy standard, along with Sony and 20 other company&nbsp;... Its single-sided SA300 micro-floppy drive offers 500K of unformatted storage. Shugart's Kevin Burr said the obvious next step is to put another 500K of storage on the other side of the diskette and that the firm will come out with a double-sided 1-megabyte micro-floppy drive soon.}}</ref> and double-sided in 1984. The double-sided, high-density 1.44&nbsp;MB (actually 1440&nbsp;KiB = 1.41&nbsp;MiB) disk drive, which would become the most popular, first shipped in 1986.<ref>{{cite book |date=November 1986 |title=1986 Disk/Trend Report – Flexible Disk Drives |publisher=Disk/Trend, Inc. |page=FSPEC-59}} Reports Sony shipped in 1Q 1986</ref> The first [[Macintosh 128K|Macintosh]] computers used single-sided 3½-inch floppy disks, but with 400&nbsp;KB formatted capacity. These were followed in 1986 by double-sided 800&nbsp;KB floppies. The higher capacity was achieved at the same recording density by varying the disk-rotation speed with head position so that the linear speed of the disk was closer to constant. Later Macs could also read and write 1.44&nbsp;MB HD disks in PC format with fixed rotation speed. Higher capacities were similarly achieved by Acorn's [[RISC OS]] (800&nbsp;KB for DD, 1,600&nbsp;KB for HD) and [[AmigaOS]] (880&nbsp;KB for DD, 1,760&nbsp;KB for HD).<!-- Apparently Amiga used ''low'' density floppies spun at half the speed that IBM compatibles used? -->
|date=November 1986 |title=1986 Disk/Trend Report - Flexible Disk Drives |publisher=Disk/Trend, Inc. |page= FSPEC-59
}} Reports Sony shipped in 1Q 1986</ref> The first [[Macintosh]] computers use single-sided {{frac|3|1|2}}-inch floppy disks, but with 400&nbsp;KB formatted capacity. These were followed in 1986 by double-sided 800&nbsp;KB floppies. The higher capacity was achieved at the same recording density by varying the disk rotation speed with head position so that the linear speed of the disk was closer to constant. Later Macs could also read and write "1.44&nbsp;MB" HD disks in PC format with fixed rotation speed.


All {{frac|3|1|2}}-inch disks have a rectangular hole in one corner which, if obstructed, write-enables the disk. A sliding detented piece can be moved to block or reveal the part of the rectangular hole that is sensed by the drive. The HD "1.44&nbsp;MB" disks have a second, unobstructed hole in the opposite corner which identifies them as being of that capacity.
All 3½-inch disks have a rectangular hole in one corner which, if obstructed, write-enables the disk. A sliding detented piece can be moved to block or reveal the part of the rectangular hole that is sensed by the drive. The HD 1.44&nbsp;MB disks have a second, unobstructed hole in the opposite corner that identifies them as being of that capacity.


In IBM-compatible PCs, the three densities of {{frac|3|1|2}}-inch floppy disks are backwards-compatible: higher density drives can read, write and format lower density media. It is also possible to format a disk at a lower density than it was intended for, but only if the disk is first thoroughly demagnetized with a bulk eraser, as the high density format is magnetically stronger and will prevent the disk from working in lower density modes.
In IBM-compatible PCs, the three densities of 3½-inch floppy disks are backwards-compatible; higher-density drives can read, write and format lower-density media. It is also possible to format a disk at a lower density than that for which it was intended, but only if the disk is first thoroughly demagnetized with a bulk eraser, as the high-density format is magnetically stronger and will prevent the disk from working in lower-density modes.


Writing at different densities than disks were intended for, sometimes by altering or drilling holes, was possible but not supported by manufacturers. A hole on one side of a {{frac|3|1|2}}‑inch disk can be altered as to make some [[disk drives]] and [[operating system]]s treat the disk as one of higher or lower density, for bidirectional compatibility or economical reasons.{{clarify|date=March 2013}}<ref>{{cite web |title=Managing Disks |url=http://www.carolrpt.com/disks.htm |access-date=2006-05-25 |archive-url=https://web.archive.org/web/20060524021845/http://www.carolrpt.com/disks.htm |archive-date=2006-05-24 |url-status=live }}</ref><ref>{{cite web |title=A question of floppies |url=http://www.jlaforums.com/viewtopic.php?p=22991294 |access-date=2011-02-20 |archive-url=https://web.archive.org/web/20111001231411/http://www.jlaforums.com/viewtopic.php?p=22991294 |archive-date=2011-10-01 |url-status=live }}</ref> Some computers, such as the [[PS/2]] and [[Acorn Archimedes]], ignored these holes altogether.<ref>{{cite web |title=Formatting 720K Disks on a 1.44MB Floppy |work=Floppy Drive |url=http://ohlandl.ipv7.net/floppy/floppy.html#Format_720K_On_144MB |access-date=2011-02-11 |archive-url=https://web.archive.org/web/20110723160004/http://ohlandl.ipv7.net/floppy/floppy.html#Format_720K_On_144MB |archive-date=2011-07-23 |url-status=live }}</ref>
Writing at different densities than those at which disks were intended, sometimes by altering or drilling holes, was possible but not supported by manufacturers. A hole on one side of a 3½-inch disk can be altered as to make some [[disk drives]] and [[operating system]]s treat the disk as one of higher or lower density, for bidirectional compatibility or economical reasons.{{clarify|date=March 2013}}<ref>{{cite web |title=Managing Disks |url=http://www.carolrpt.com/disks.htm |access-date=2006-05-25 |archive-url=https://web.archive.org/web/20060524021845/http://www.carolrpt.com/disks.htm |archive-date=2006-05-24 |url-status=live}}</ref><ref>{{cite news |title=A question of floppies | newspaper=Jla Forums |url=http://www.jlaforums.com/viewtopic.php?p=22991294 |access-date=2011-02-20 |archive-url=https://web.archive.org/web/20111001231411/http://www.jlaforums.com/viewtopic.php?p=22991294 |archive-date=2011-10-01 |url-status=live}}</ref> Some computers, such as the [[PS/2]] and [[Acorn Archimedes]], ignored these holes altogether.<ref>{{cite web |title=Formatting 720K Disks on a 1.44MB Floppy |work=Floppy Drive |url=http://ohlandl.ipv7.net/floppy/floppy.html#Format_720K_On_144MB |access-date=2011-02-11 |archive-url=https://web.archive.org/web/20110723160004/http://ohlandl.ipv7.net/floppy/floppy.html#Format_720K_On_144MB |archive-date=2011-07-23 |url-status=live}}</ref>

It is possible to make a {{frac|3|1|2}}-inch floppy disk drive be recognized by a system as a {{frac|5|1|4}}‑inch 360&nbsp;KB or 1200&nbsp;KB drive, and to read and write disks with the same number of tracks and sectors as those disks; this had some application in data exchange with obsolete [[CP/M]] systems.{{citation needed|date=January 2008}}


===Other sizes===
===Other sizes===
{{main|Floppy disk variants}}
{{Main|Floppy disk variants}}


Other smaller floppy sizes were proposed, especially for portable or pocket-sized devices that needed a smaller storage device.
Other, smaller, floppy sizes were proposed, especially for portable or pocket-sized devices that needed a smaller storage device. 3-inch disks similar in construction to {{frac|3|1|2}}-inch were manufactured and used for a time, particularly by [[Amstrad#Computer product lines|Amstrad]] computers and word processors. A 2-inch nominal size known as the [[Video Floppy]] was introduced by Sony for use with its Mavica still video camera.<ref>{{cite web|title=Sony / Canon 2 Inch Video Floppy|url=http://www.obsoletemedia.org/2-inch-floppy-disk-video-floppy/|website=Museum of Obsolete Media|access-date=4 January 2018|date=2013-05-02|archive-url=https://web.archive.org/web/20180113005125/http://www.obsoletemedia.org/2-inch-floppy-disk-video-floppy/|archive-date=13 January 2018|url-status=live}}</ref> An incompatible 2-inch floppy was produced by Fujifilm called the LT-1 was used in the [[Zenith Minisport]] portable computer.<ref>{{cite web|title=2 inch lt1 floppy disk|url=http://www.obsoletemedia.org/lt-1/|website=Museum of Obsolete Media|access-date=4 January 2018|date=2017-07-22|archive-url=https://web.archive.org/web/20180104221008/http://www.obsoletemedia.org/lt-1/|archive-date=4 January 2018|url-status=live}}</ref> Neither of these sizes achieved much market success.<ref>Disk/Trend Report-Flexible Disk Drives, Disk/Trend Inc., November 1991, pp. SUM-27</ref>
* [[Tabor Drivette|3¼-inch floppies]] otherwise similar to 5¼-inch floppies were proposed by [[Tabor Corporation|Tabor]] and [[Dysan]].
* Three-inch disks similar in construction to 3½-inch were manufactured and used for a time, particularly by [[Amstrad#Computer product lines|Amstrad]] computers and word processors.
* A two-inch nominal size known as the [[Video Floppy]] was introduced by Sony for use with its Mavica still video camera.<ref>{{cite web|title=Sony / Canon 2 Inch Video Floppy|url=http://www.obsoletemedia.org/2-inch-floppy-disk-video-floppy/|website=Museum of Obsolete Media|access-date=4 January 2018|date=2013-05-02|archive-url=https://web.archive.org/web/20180113005125/http://www.obsoletemedia.org/2-inch-floppy-disk-video-floppy/|archive-date=13 January 2018|url-status=live}}</ref>
* An incompatible two-inch floppy produced by Fujifilm called the LT-1 was used in the [[Zenith Minisport]] portable computer.<ref>{{cite web|title=2 inch lt1 floppy disk|url=http://www.obsoletemedia.org/lt-1/|website=Museum of Obsolete Media|access-date=4 January 2018|date=2017-07-22|archive-url=https://web.archive.org/web/20180104221008/http://www.obsoletemedia.org/lt-1/|archive-date=4 January 2018|url-status=live}}</ref>
None of these sizes achieved much market success.<ref>Disk/Trend Report-Flexible Disk Drives, Disk/Trend Inc., November 1991, pp. SUM-27</ref>


===Sizes, performance and capacity===
===Sizes, performance and capacity===
Floppy disk size is often referred to in inches, even in countries using [[SI|metric]] and though the size is defined in metric. The ANSI specification of 3½-inch disks is entitled in part "90 mm (3.5-inch)" though 90&nbsp;mm is closer to 3.54&nbsp;inches.<ref>ANSI X3.137, One- and Two-Sided, Unformatted, 90-mm (3.5-inch) 5,3-tpmm (135-tpi), Flexible Disk Cartridge for 7958 bpr Use. General, Physical and Magnetic Requirements.</ref> Formatted capacities are generally set in terms of [[kilobyte]]s and [[megabyte]]s.
{{main |List of floppy disk formats}}
<!--Please be careful when changing prefixes; k = 1000 and K = 1024 and note that M may mean either 1,000,000 or 1,048,576 or something else depending upon context -->
Floppy disk size is often referred to in inches, even in countries using [[SI|metric]] and though the size is defined in metric. The ANSI specification of {{frac|3|1|2}}-inch disks is entitled in part "90 mm (3.5 inch)" though 90&nbsp;mm is closer to 3.54&nbsp;inches.<ref>ANSI X3.137, One- and Two-Sided, Unformatted, 90-mm (3.5-inch) 5,3-tpmm (135-tpi), Flexible Disk Cartridge for 7958 bpr Use. General, Physical and Magnetic Requirements.</ref> Formatted capacities are generally set in terms of [[kilobyte]]s and [[megabyte]]s.

{|class="wikitable"
{|class="wikitable"
|+ Historical sequence of floppy disk formats
|+ Historical sequence of floppy disk formats
<small><br/>In quantities of bits (b) or bytes (B) the prefixes:
<br/> k = 1,000 and K = 1,024
<br/> M has varying amounts.</small>
|-
|-
! Disk format
! Disk format
Line 214: Line 242:
| volume = 25
| volume = 25
| issue = 5
| issue = 5
| pages = 701–10| doi = 10.1147/rd.255.0701
| pages = 701–710| doi = 10.1147/rd.255.0701
}}</ref>
}}</ref>
| style="text-align: right" | not marketed commercially
| style="text-align: right" | not marketed commercially
Line 223: Line 251:
| style="text-align: right" | 1.5 megabit full track<ref name="memorex650" />
| style="text-align: right" | 1.5 megabit full track<ref name="memorex650" />
|-
|-
| 8-inch: SSSD
| 8-inch: SS SD
IBM 33FD/Shugart 901
IBM 33FD / Shugart 901
| style="text-align: center" | 1973
| style="text-align: center" | 1973
| style = "text-align: right" | 242.844 kB<ref name="research.ibm.com"/>
| style = "text-align: right" | 242.844 kB<ref name="research.ibm.com"/>
| style="text-align: right" | 3.1 megabit unformatted
| style="text-align: right" | 3.1 megabit unformatted
|-
|-
| 8-inch: DSSD
| 8-inch: DS SD
IBM 43FD/Shugart 850
IBM 43FD / Shugart 850
| style="text-align: center" | 1976
| style="text-align: center" | 1976
| style = "text-align: right" | 568.320 kB<ref name="research.ibm.com"/>
| style = "text-align: right" | 568.320 kB<ref name="research.ibm.com"/>
| style="text-align: right" | 6.2 megabit unformatted
| style="text-align: right" | 6.2 megabit unformatted
|-
|-
| {{frac|5|1|4}}-inch (35 track) Shugart SA 400
| 5¼-inch (35 track) Shugart SA 400
| style="text-align: center" | 1976<ref>{{cite journal |author-last=Sollman |author-first=George |title=Evolution of the Minifloppy Product Family |journal=IEEE Transactions on Magnetics |volume=14 |issue=4 |pages=160–66 |date=July 1978 |doi=10.1109/TMAG.1978.1059748 |s2cid=32505773 |issn=0018-9464}}</ref>
| style="text-align: center" | 1976<ref>{{cite journal |last=Sollman |first=George |date=July 1978 |title=Evolution of the Minifloppy Product Family |journal=IEEE Transactions on Magnetics |volume=14 |issue=4 |pages=160–66 |doi=10.1109/TMAG.1978.1059748 |s2cid=32505773 |issn=0018-9464}}</ref>
| style="text-align: right" | 87.5 KB<ref>{{cite web|date=2007-06-25|title=Shugart SA 400 Datasheet|url=http://www.swtpc.com/mholley/SA400/SA400_Index.htm|url-status=dead|archive-url=https://web.archive.org/web/20140527094602/http://www.swtpc.com/mholley/SA400/SA400_Index.htm|archive-date=2014-05-27|access-date=2011-06-22|publisher=Swtpc}}</ref>
| style="text-align: right" | 87.5 KB<ref>{{cite web|date=2007-06-25|title=Shugart SA 400 Datasheet|url=http://www.swtpc.com/mholley/SA400/SA400_Index.htm|url-status=dead|archive-url=https://web.archive.org/web/20140527094602/http://www.swtpc.com/mholley/SA400/SA400_Index.htm|archive-date=2014-05-27|access-date=2011-06-22|publisher=Swtpc}}</ref>
| style="text-align: right" | 110 kB
| style="text-align: right" | 110 kB
|-
|-
| 8-inch DSDD
| 8-inch DS DD
[[List of floppy disk formats#IBM 8-inch formats|IBM 53FD]] / Shugart 850
[[List of floppy disk formats#IBM 8-inch formats|IBM 53FD]] / Shugart 850
| style="text-align: center" | 1977
| style="text-align: center" | 1977
| style="text-align: right" | 985–1,212 KB depending upon sector size
| style="text-align: right" | 962–1,184&nbsp;KB depending upon sector size
| style="text-align: right" | 1.2&nbsp;MB
| style="text-align: right" | 1.2&nbsp;MB
|-
|-
| {{frac|5|1|4}}-inch DD
| 5¼-inch DD
| style="text-align: center" | 1978
| style="text-align: center" | 1978
| style="text-align: right" | 360 or 800 KB
| style="text-align: right" | 360 or 800&nbsp;KB
| style="text-align: right" | 360 KB
| style="text-align: right" | 360 KB
|-
|-
| {{frac|5|1|4}}-inch Apple Disk II (Pre-DOS 3.3)
| 5¼-inch Apple Disk II (Pre-DOS 3.3)
| style="text-align: center" | 1978
| style="text-align: center" | 1978
| style ="text-align: right" | 113.75 KB (256 byte sectors, 13 sectors/track, 35 tracks)
| style ="text-align: right" | 113.75 KB (256 byte sectors, 13 sectors/track, 35 tracks)
| style="text-align: right" | 113 KB
| style="text-align: right" | 113 KB
|-
|-
| {{frac|5|1|4}}-inch Atari DOS 2.0S
| 5¼-inch Atari DOS 2.0S
| style="text-align: center" | 1979
| style="text-align: center" | 1979
| style="text-align: right" | 90 KB (128 byte sectors, 18 sectors/track, 40 tracks)
| style="text-align: right" | 90 KB (128 byte sectors, 18 sectors/track, 40 tracks)
| style="text-align: right" | 90 KB
| style="text-align: right" | 90 KB
|-
|-
| {{frac|5|1|4}}-inch [[Commodore DOS]] 1.0 (SSDD)
| 5¼-inch [[Commodore DOS]] 1.0 (SSDD)
| style="text-align: center" | 1979<ref>{{cite magazine|title=New Commodore Products: A Quick Review|last=Beals|first=Gene|magazine=PET User Notes|location=Montgomeryville, Pennsylvania|volume=2|issue=1|date=n.d.|page=2|url=http://archive.6502.org/publications/pet_user_notes/pet_user_notes_v2_i1_may_1979.pdf|access-date=2018-10-07|archive-url=https://web.archive.org/web/20160611084859/http://archive.6502.org/publications/pet_user_notes/pet_user_notes_v2_i1_may_1979.pdf|archive-date=2016-06-11|url-status=live}}</ref>
| style="text-align: center" | 1979<ref>{{cite magazine|title=New Commodore Products: A Quick Review|last=Beals|first=Gene|magazine=PET User Notes|location=Montgomeryville, Pennsylvania|volume=2|issue=1|date=n.d.|page=2|url=http://archive.6502.org/publications/pet_user_notes/pet_user_notes_v2_i1_may_1979.pdf|access-date=2018-10-07|archive-url=https://web.archive.org/web/20160611084859/http://archive.6502.org/publications/pet_user_notes/pet_user_notes_v2_i1_may_1979.pdf|archive-date=2016-06-11|url-status=live}}</ref>
| style="text-align: right" | 172.5 KB<ref name="progPET">{{cite book|title=Programming the PET/CBM: The Reference Encyclopedia For Commodore PET & CBM Users|last=West|first=Raeto Collin|page=167|publisher=COMPUTE! Books|isbn=0-942386-04-3|date=January 1982|url=https://archive.org/details/COMPUTEs_Programming_the_PET-CBM_1982_Small_Systems_Services/page/n175|access-date=2018-10-07}}</ref>
| style="text-align: right" | 172.5 KB<ref name="progPET">{{cite book|title=Programming the PET/CBM: The Reference Encyclopedia For Commodore PET & CBM Users|last=West|first=Raeto Collin|page=167|publisher=COMPUTE! Books|isbn=0-942386-04-3|date=January 1982|url=https://archive.org/details/COMPUTEs_Programming_the_PET-CBM_1982_Small_Systems_Services/page/n175|access-date=2018-10-07}}</ref>
| style="text-align: right" | 170 KB
| style="text-align: right" | 170 KB
|-
|-
| {{frac|5|1|4}}-inch [[Commodore DOS]] 2.1 (SSDD)
| 5¼-inch [[Commodore DOS]] 2.1 (SSDD)
| style="text-align: center" | 1980<ref>{{cite web|url=https://github.com/mist64/cbmsrc/blob/master/DOS_4040/dos|title=cbmsrc / DOS_4040 / dos|author=Commodore Business Machines|date=1980-02-05|access-date=2018-10-07}}</ref>
| style="text-align: center" | 1980<ref>{{cite web|url=https://github.com/mist64/cbmsrc/blob/master/DOS_4040/dos|title=cbmsrc / DOS_4040 / dos |website=[[GitHub]]|date=1980-02-05|access-date=2018-10-07}}</ref>
| style="text-align: right" | 170.75 KB<ref name="progPET"/>
| style="text-align: right" | 170.75 KB<ref name="progPET"/>
| style="text-align: right" | 170 KB
| style="text-align: right" | 170 KB
|-
|-
| {{frac|5|1|4}}-inch Apple Disk II (DOS 3.3)
| 5¼-inch Apple Disk II (DOS 3.3)
| style="text-align: center" | 1980
| style="text-align: center" | 1980
| style="text-align: right" | 140 KB (256 byte sectors, 16 sectors/track, 35 tracks)
| style="text-align: right" | 140 KB (256 byte sectors, 16 sectors/track, 35 tracks)
| style="text-align: right" | 140 KB
| style="text-align: right" | 140 KB
|-
|-
| {{frac|5|1|4}}-inch Apple Disk II ([http://www.mobygames.com/developer/sheet/view/developerId,16399/ Roland Gustafsson]'s [http://fabiensanglard.net/prince_of_persia/pop_boot.php RWTS18])
| 5¼-inch Apple Disk II ([http://www.mobygames.com/developer/sheet/view/developerId,16399/ Roland Gustafsson]'s [http://fabiensanglard.net/prince_of_persia/pop_boot.php RWTS18])
| style="text-align: center" | 1988
| style="text-align: center" | 1988
| style="text-align: right" | 157.5 KB (768 byte sectors, 6 sectors/track, 35 tracks)
| style="text-align: right" | 157.5 KB (768 byte sectors, 6 sectors/track, 35 tracks)
| style="text-align: right" | Game publishers privately contracted 3rd party custom DOS.
| style="text-align: right" | Game publishers privately contracted 3rd party custom DOS.
|-
|-
|5¼-inch Victor 9000 / ACT Sirius 1 (SSDD)
| {{frac|3|1|2}}-inch HP single sided
| style="text-align: center" | 1982<ref name="auto">{{cite web|url=http://bitsavers.org/pdf/victor/victor9000/Victor_9000_Hardware_Reference_Manual_1983.pdf |title=Victor 9000 Hardware Reference Manual |access-date=2022-09-12 | archive-url=https://web.archive.org/web/20220129140512/http://bitsavers.org/pdf/victor/victor9000/Victor_9000_Hardware_Reference_Manual_1983.pdf | archive-date=2022-01-29 |url-status=live}}</ref>
| style="text-align: right" | 612 KB (512 byte sectors, 11-19 variable sectors / track, 80 tracks)
| style="text-align: right" | 600 KB
|-
|5¼-inch Victor 9000 / ACT Sirius 1 (DSDD)
| style="text-align: center" | 1982<ref name="auto"/>
| style="text-align: right" | 1,196 KB (512 byte sectors, 11-19 variable sectors / track, 80 tracks)
| style="text-align: right" | 1,200 KB
|-
| 3½-inch HP SS
| style="text-align: center" | 1982
| style="text-align: center" | 1982
| style="text-align: right" | 256×16×70 = 280 KB
| style="text-align: right" | 280 KB (256 byte sectors, 16 sectors/track, 70 tracks)
| style="text-align: right" | 264 KB
| style="text-align: right" | 264 KB
|-
|-
| {{frac|5|1|4}}-inch Atari DOS 3
| 5¼-inch Atari DOS 3
| style="text-align: center" | 1983
| style="text-align: center" | 1983
| style="text-align: right" | 127 KB (128 byte sectors, 26 sectors/track, 40 tracks)
| style="text-align: right" | 127 KB (128 byte sectors, 26 sectors/track, 40 tracks)
Line 292: Line 330:
|-
|-
| 3-inch
| 3-inch
| style="text-align: center" | 1982<ref name="Amdisk-3MF">{{cite web |url=http://nikkicox.tripod.com/comp1981.htm |title=Chronology of Events in the History of Microcomputers − 1981–1983 Business Takes Over |access-date=2008-10-04 |archive-url=https://web.archive.org/web/20081207112541/http://nikkicox.tripod.com/comp1981.htm |archive-date=2008-12-07 |url-status=live }}</ref><ref name="3inch">{{cite web|title=Three-inch floppy disk product announced|url=http://csdl.computer.org/plugins/dl/pdf/mags/mi/1982/02/04070788.pdf|url-status=dead|archive-url=https://web.archive.org/web/20120808174200/http://csdl.computer.org/plugins/dl/pdf/mags/mi/1982/02/04070788.pdf|archive-date=2012-08-08|access-date=2008-10-04}}</ref>
| style="text-align: center" | 1982<ref name="Amdisk-3MF">{{cite web |url=http://nikkicox.tripod.com/comp1981.htm |title=Chronology of Events in the History of Microcomputers − 1981–1983 Business Takes Over |access-date=2008-10-04 |archive-url=https://web.archive.org/web/20081207112541/http://nikkicox.tripod.com/comp1981.htm |archive-date=2008-12-07 |url-status=live}}</ref><ref name="3inch">{{cite web|title=Three-inch floppy disk product announced|url=http://csdl.computer.org/plugins/dl/pdf/mags/mi/1982/02/04070788.pdf|url-status=dead|archive-url=https://web.archive.org/web/20120808174200/http://csdl.computer.org/plugins/dl/pdf/mags/mi/1982/02/04070788.pdf|archive-date=2012-08-08|access-date=2008-10-04}}</ref>
| style="text-align: right" | ?
| style="text-align: right" | ?
| style="text-align: right" | 125 KB (SS/SD),
| style="text-align: right" | 125 KB (SS/SD),
500 KB (DS/DD)<ref name="3inch"/>
500&nbsp;KB (DS/DD)<ref name="3inch"/>
|-
|-
| {{frac|3|1|2}}-inch SS (DD at release)
| 3½-inch SS DD (at release)
| style="text-align: center" | 1983 <!-- see discussion at Talk%3AFloppy_disk#First_3½-inch_FDDs -->
| style="text-align: center" | 1983<ref name="InfoWorld November 1982">{{cite journal |title=Tandon announces tiny but powerful 3&frac12; inch disk drive |journal=[[InfoWorld]] |volume=4 |issue=43 |page=11 |date=1982-11-01 |url=https://books.google.com/books?id=EzAEAAAAMBAJ&pg=PA11 |issn=0199-6649 |publisher=[[InfoWorld Media Group, Inc.]] |author=Infoworld Media Group}}</ref>
| style="text-align: right" | 360 KB (400 on Macintosh)
| style="text-align: right" | 360 KB (400&nbsp;KB on Macintosh)
| style="text-align: right" | 500 KB
| style="text-align: right" | 500 KB
|-
|-
| {{frac|3|1|2}}-inch DS DD
| 3½-inch DS DD
| style="text-align: center" | 1984
| style="text-align: center" | 1983 <!-- see discussion at Talk%3AFloppy_disk#First_3½-inch_FDDs -->
| style="text-align: right" | 720 KB (800&nbsp;KB on Macintosh and RISC OS,<ref name="RISC OS">{{cite web |url=https://www.riscos.com/support/users/userguide3/book1b/c_2.html |title=6. Using floppy and hard discs |work=RISC OS 3.7 User Guide |date=January 21, 1997 |access-date=January 4, 2022 }}{{Dead link|date=March 2022 |bot=InternetArchiveBot |fix-attempted=yes }}</ref> 880&nbsp;KB on Amiga)
| style="text-align: right" | 720 KB (800 on Macintosh, 880 KB on Amiga)
| style="text-align: right" | 1&nbsp;MB
| style="text-align: right" | 1&nbsp;MB
|-
|-
| {{frac|5|1|4}}-inch QD
| 5¼-inch QD
| style="text-align: center" | 1980<ref>{{cite book |last=Porter |first=James |date=December 1982 |title=1982 Disk/Trend Report – Flexible Disk Drives |publisher=Disk/Trend |page=DT13-3 |quote=The original 48 tpi drives were joined by 96tpi drives from Tandon, Micro Peripherals and Micropolis in 1980 ...}}</ref>
| style="text-align: center" |
| style="text-align: right" | 720 KB
| style="text-align: right" | 720 KB
| style="text-align: right" | 720 KB
| style="text-align: right" | 720 KB
|-
|-
| {{frac|5|1|4}}-inch RX50 (SSQD)
| 5¼-inch RX50 (SSQD)
| style="text-align: center" | circa 1982
| style="text-align: center" | {{Circa|1982}}
| style="text-align: right" | 400 KB{{citation needed|date=August 2012}}
| style="text-align: right" {{n/a}}
| style="text-align: right" | 400 KB
| style="text-align: right" | 400 KB
|-
|-
| {{frac|5|1|4}}-inch HD
| 5¼-inch HD
| style="text-align: center" | 1982<ref>1986 Disk/Trend Report, Flexible Disk Drives</ref>
| style="text-align: center" | 1982<ref>1986 Disk/Trend Report, Flexible Disk Drives</ref>
| style="text-align: right" | 1,200 KB
| style="text-align: right" | 1,200 KB
| style="text-align: right" | 1.2&nbsp;MB
| style="text-align: right" | 1.2&nbsp;MB
|-
| 3-inch DD{{citation needed|date=December 2018}}
| style="text-align: center" | ?
| style="text-align: right" | ?
| style="text-align: right" | ?
|-
|-
| 3-inch Mitsumi Quick Disk
| 3-inch Mitsumi Quick Disk
| style="text-align: center" | 1985
| style="text-align: center" | 1985
| style="text-align: right" | 128 to 256 KB
| style="text-align: right" | 128 to 256&nbsp;KB
| style="text-align: right" | ?
| style="text-align: right" | ?
|-
| 3-inch [[Famicom Disk System]] (derived from Quick Disk)
| style="text-align: center" | 1986
| style="text-align: right" | 112 KB
| style="text-align: right" | 128&nbsp;KB<ref name="Revisiting the Famicom Disk System">{{cite web |url=https://www.eurogamer.net/articles/digitalfoundry-2019-retro-revisiting-famicom-disk-system |title=Revisiting the Famicom Disk System |website=[[Eurogamer]] |date=27 July 2019}}</ref>
|-
|-
| 2-inch
| 2-inch
Line 337: Line 375:
| style="text-align: right" | ?
| style="text-align: right" | ?
|-
|-
| {{frac|2|1|2}}-inch Sharp CE-1600F,<ref name="Sharp_1986_CE1600F"/> CE-140F (chassis: FDU-250, medium: CE-1650F)<ref name="Sharp_1986_CE140F"/>
| 2½-inch Sharp CE-1600F,<ref name="Sharp_1986_CE1600F"/> CE-140F (chassis: FDU-250, medium: CE-1650F)<ref name="Sharp_1986_CE140F"/>
| style="text-align: center" | 1986<ref name="Sharp_1986_CE1600F">{{cite book |title=Sharp PC-1600 Service Manual |chapter=Model CE-1600F |pages=98–104 |date=July 1986 |publisher=[[Sharp Corporation]], Information Systems Group, Quality & Reliability Control Center |location=Yamatokoriyama, Japan |chapter-url=http://sharppocketcomputers.com/4HK7JnFJDuVm/Service/ce1600f_service_manual.pdf |access-date=2017-03-12 |url-status=live |archive-url=https://web.archive.org/web/20170323132153/http://sharppocketcomputers.com/4HK7JnFJDuVm/Service/ce1600f_service_manual.pdf |archive-date=2017-03-23}}</ref><ref name="Sharp_1986_CE140F">{{cite book |title=Sharp Service Manual Model CE-140F Pocket Disk Drive |publisher=[[Sharp Corporation]] |id=00ZCE140F/SME |url=http://pockemul.free.fr/Documents/ce-140f_Service_manual.pdf |access-date=2017-03-11 |url-status=live |archive-url=https://web.archive.org/web/20170311145818/http://pockemul.free.fr/Documents/ce-140f_Service_manual.pdf |archive-date=2017-03-11}}</ref><ref name="1986_maxell_drives"/>
| style="text-align: center" | 1986<ref name="Sharp_1986_CE1600F">{{cite book |title=Sharp PC-1600 Service Manual |chapter=Model CE-1600F |pages=98–104 |date=July 1986 |publisher=[[Sharp Corporation]], Information Systems Group, Quality & Reliability Control Center |location=Yamatokoriyama, Japan |chapter-url=http://sharppocketcomputers.com/4HK7JnFJDuVm/Service/ce1600f_service_manual.pdf |access-date=2017-03-12 |url-status=live |archive-url=https://web.archive.org/web/20170323132153/http://sharppocketcomputers.com/4HK7JnFJDuVm/Service/ce1600f_service_manual.pdf |archive-date=2017-03-23}}</ref><ref name="Sharp_1986_CE140F">{{cite book |title=Sharp Service Manual Model CE-140F Pocket Disk Drive |publisher=[[Sharp Corporation]] |id=00ZCE140F/SME |url=http://pockemul.free.fr/Documents/ce-140f_Service_manual.pdf |access-date=2017-03-11 |url-status=live |archive-url=https://web.archive.org/web/20170311145818/http://pockemul.free.fr/Documents/ce-140f_Service_manual.pdf |archive-date=2017-03-11}}</ref><ref name="1986_maxell_drives"/>
| style="text-align: right" | [[flippy disk|turnable]] diskette with 62,464 bytes per side (512 byte sectors, 8 sectors/track, 16 tracks, [[GCR (4/5)]] recording)<ref name="Sharp_1986_CE1600F"/><ref name="Sharp_1986_CE140F"/>
| style="text-align: right" | [[flippy disk|turnable]] diskette with 62,464 bytes per side (512 byte sectors, 8 sectors/track, 16 tracks, [[GCR (4/5)]] recording)<ref name="Sharp_1986_CE1600F"/><ref name="Sharp_1986_CE140F"/>
| style="text-align: right" | 2× 64 KB (128 KB)<ref name="Sharp_1986_CE1600F"/><ref name="Sharp_1986_CE140F"/>
| style="text-align: right" | 2× 64 KB (128&nbsp;KB)<ref name="Sharp_1986_CE1600F"/><ref name="Sharp_1986_CE140F"/>
|-
|-
| 5¼-inch<ref>{{Cite patent|title=Production of perpendicular magnetic recording medium|fdate=1986-08-12|pubdate=1988-02-25|country=JP|number=S6344319A|inventor1-first= Osamu |inventor1-last=Kitagami |inventor2-first= Hideo |inventor2-last=Fujiwara|assign=[[Hitachi Maxell]]}}</ref> Perpendicular
| {{frac|5|1|4}}-inch{{failed verification|date=October 2018}} Perpendicular
| style="text-align: center" | 1986<ref name="1986_maxell_drives">{{cite magazine|last=Bateman|first=Selby|magazine=COMPUTE!|issue=70|date=March 1986|page=18|url=http://www.atarimagazines.com/compute/issue70/054_1_THE_FUTURE_OF_MASS_STORAGE.php|title=The Future of Mass Storage|publisher=COMPUTE! Publications, Inc.|access-date=2018-10-07|archive-url=https://web.archive.org/web/20180701002021/https://www.atarimagazines.com/compute/issue70/054_1_THE_FUTURE_OF_MASS_STORAGE.php|archive-date=2018-07-01|url-status=live}}</ref>
| style="text-align: center" | 1986<ref name="1986_maxell_drives">{{cite magazine|last=Bateman|first=Selby|magazine=COMPUTE!|issue=70|date=March 1986|page=18|url=http://www.atarimagazines.com/compute/issue70/054_1_THE_FUTURE_OF_MASS_STORAGE.php|title=The Future of Mass Storage|publisher=COMPUTE! Publications, Inc.|access-date=2018-10-07|archive-url=https://web.archive.org/web/20180701002021/https://www.atarimagazines.com/compute/issue70/054_1_THE_FUTURE_OF_MASS_STORAGE.php|archive-date=2018-07-01|url-status=live}}</ref>
| style="text-align: right" | 100 KB per inch<ref name="1986_maxell_drives"/>
| style="text-align: right" | 100 KB per inch<ref name="1986_maxell_drives"/>
| style="text-align: right" | ?
| style="text-align: right" | ?
|-
|-
| {{frac|3|1|2}}-inch HD
| 3½-inch HD
| style="text-align: center" | 1986<ref name="InfoWorld November 1986">{{cite journal |title=Vendor Introduces Ultra High-Density Floppy Disk Media |journal=[[InfoWorld]] |volume=8 |issue=45 |page=19 |date=1986-11-10 |url=https://books.google.com/books?id=rDwEAAAAMBAJ&pg=PA19}}</ref>
| style="text-align: center" | 1986<ref name="InfoWorld November 1986">{{cite journal |title=Vendor Introduces Ultra High-Density Floppy Disk Media |journal=[[InfoWorld]] |volume=8 |issue=45 |page=19 |date=1986-11-10 |url=https://books.google.com/books?id=rDwEAAAAMBAJ&pg=PA19}}</ref>
| style="text-align: right" | 1,440 KB (1,760 KB on Amiga)
| style="text-align: right" | 1,440 KB (512 bytes sectors, 18 sectors/track, 160 tracks); 1,760&nbsp;KB on Amiga
| style="text-align: right" | 1.44&nbsp;MB (2.0&nbsp;MB unformatted)
| style="text-align: right" | 1.44&nbsp;MB (2.0&nbsp;MB unformatted)
|-
|-
| {{frac|3|1|2}}-inch ED
| 3½-inch HD
| style="text-align: center" | 1987<ref name="Mueller">{{cite book |title=Upgrading and Repairing PCs, 15th Anniversary Edition |author-last=Mueller |author-first=Scott |date=2004 |publisher=[[Que Publishing]] |isbn=0-7897-2974-1 |page=1380 |url=https://books.google.com/books?id=E1p2FDL7P5QC&pg=PA1380 |access-date=2011-07-16}}</ref>
| style="text-align: center" | 1987
| style="text-align: right" | 1,600 KB on RISC OS<ref name="RISC OS"/>
| style="text-align: right" | 1.6&nbsp;MB
|-
| 3½-inch ED
| style="text-align: center" | 1987<ref name="Mueller">{{cite book |title=Upgrading and Repairing PCs, 15th Anniversary Edition |last=Mueller |first=Scott |date=2004 |publisher=[[Que Publishing]] |isbn=0-7897-2974-1 |page=1380 |url=https://books.google.com/books?id=E1p2FDL7P5QC&pg=PA1380 |access-date=2011-07-16}}</ref>
| style="text-align: right" | 2,880 KB (3,200 KB on Sinclair QL)
| style="text-align: right" | 2,880 KB (3,200&nbsp;KB on Sinclair QL)
| style="text-align: right" | 2.88&nbsp;MB
| style="text-align: right" | 2.88&nbsp;MB
|-
|-
| {{frac|3|1|2}}-inch [[Floptical]] (LS)
| 3½-inch [[Floptical]] (LS)
| style="text-align: center" | 1991
| style="text-align: center" | 1991
| style="text-align: right" | 20,385 KB
| style="text-align: right" | 20,385 KB
| style="text-align: right" | 21&nbsp;MB
| style="text-align: right" | 21&nbsp;MB
|-
|-
| {{frac|3|1|2}}-inch [[Superdisk]] (LS-120)
| 3½-inch [[SuperDisk]] (LS-120)
| style="text-align: center" | 1996
| style="text-align: center" | 1996
| style="text-align: right" | 120.375&nbsp;MB
| style="text-align: right" | 120,375&nbsp;KB
| style="text-align: right" | 120&nbsp;MB
| style="text-align: right" | 120&nbsp;MB
|-
|-
| {{frac|3|1|2}}-inch [[Superdisk]] (LS-240)
| 3½-inch [[SuperDisk]] (LS-240)
| style="text-align: center" | 1997
| style="text-align: center" | 1997
| style="text-align: right" | 240.75&nbsp;MB
| style="text-align: right" | 240,750&nbsp;KB
| style="text-align: right" | 240&nbsp;MB
| style="text-align: right" | 240&nbsp;MB
|-
|-
| {{frac|3|1|2}}-inch [[HiFD]]
| 3½-inch [[HiFD]]
| style="text-align: center" | 1998/99
| style="text-align: center" | 1998/99
| style="text-align: right" | ?
| style="text-align: right" | ?
| style="text-align: right" | 150/200&nbsp;MB
| style="text-align: right" | 150/200&nbsp;MB
|-
|-
| colspan=4 style="text-align: center" | Abbreviations: {{nowrap|1='''SD''' = Single Density;}} {{nowrap|1='''DD''' = Double Density;}} {{nowrap|1='''QD''' = Quad Density;}} {{nowrap|1='''HD''' = High Density;}} {{nowrap|1='''ED''' = Extra-high Density;}}<ref>{{cite book |title=Hardware-Praxis – PCs warten reparieren, aufrüsten und konfigurieren |author-first=Scott |author-last=Mueller |date=1994 |isbn=3-89319-705-2 |page=441 |edition=3rd |publisher=[[Addison-Wesley Publishing Company]] |language=de}}</ref><ref>{{cite web|url=https://books.google.com/books?id=1T0EAAAAMBAJ&pg=PA101|title=InfoWorld|first=InfoWorld Media Group|last=Inc|date=14 October 1991|publisher=InfoWorld Media Group, Inc.|via=Google Books}}</ref><ref name="Intel_1992_82077SL">{{cite book |title=Intel 82077SL for Super-Dense Floppies |author-first=Katen A. |author-last=Shah |publisher=[[Intel Corporation]], IMD Marketing |orig-year=September 1992, April 1992 |edition=2 |date=1996 |id=AP-358, 292093-002 |type=Application Note |url=http://www.pix.net/languard/pdfs/29209302.pdf |access-date=2017-06-19 |url-status=live |archive-url=https://web.archive.org/web/20170619210818/http://www.pix.net/languard/pdfs/29209302.pdf |archive-date=2017-06-19}}</ref><ref>{{cite web|url=https://books.google.com/books?id=x2kb8n32nTMC&pg=PT38|title=PC Mag|first=Ziff Davis|last=Inc|date=10 September 1991|publisher=Ziff Davis, Inc.|via=Google Books}}</ref><ref>{{cite web|url=https://books.google.com/books?id=KjsEAAAAMBAJ&pg=PT22|title=InfoWorld|first=InfoWorld Media Group|last=Inc|date=19 March 1990|publisher=InfoWorld Media Group, Inc.|via=Google Books}}</ref>{{nowrap|1='''LS''' = Laser Servo;}} {{nowrap|1='''HiFD''' = High capacity Floppy Disk;}} {{nowrap|1='''SS''' = Single Sided;}} {{nowrap|1='''DS''' = Double Sided}}
| colspan=4 style="text-align: center" | Abbreviations: {{nowrap|1='''SD''' = Single Density;}} {{nowrap|1='''DD''' = Double Density;}} {{nowrap|1='''QD''' = Quad Density;}} {{nowrap|1='''HD''' = High Density;}} {{nowrap|1='''ED''' = Extra-high Density;}}<ref>{{cite book |title=Hardware-Praxis – PCs warten reparieren, aufrüsten und konfigurieren |last=Mueller |first=Scott |date=1994 |isbn=3-89319-705-2 |page=441 |edition=3rd |publisher=[[Addison-Wesley Publishing Company]] |language=de}}</ref><ref>{{cite web|url=https://books.google.com/books?id=1T0EAAAAMBAJ&pg=PA101|title=InfoWorld|first=InfoWorld Media Group|last=Inc|date=14 October 1991|publisher=InfoWorld Media Group, Inc.|via=Google Books}}</ref><ref name="Intel_1992_82077SL">{{cite book |last=Shah |first=Katen A. |date=1996 |title=Intel 82077SL for Super-Dense Floppies |publisher=[[Intel Corporation]], IMD Marketing |orig-year=September 1992, April 1992 |edition=2 |id=AP-358, 292093-002 |type=Application Note |url=http://www.pix.net/languard/pdfs/29209302.pdf |access-date=2017-06-19 |url-status=live |archive-url=https://web.archive.org/web/20170619210818/http://www.pix.net/languard/pdfs/29209302.pdf |archive-date=2017-06-19}}</ref><ref>{{cite web |url=https://books.google.com/books?id=x2kb8n32nTMC&pg=PT38|title=PC Mag |first=Ziff Davis |last=Inc |date=10 September 1991 |publisher=Ziff Davis, Inc. |via=Google Books}}</ref><ref>{{cite web |url=https://books.google.com/books?id=KjsEAAAAMBAJ&pg=PT22 |title=InfoWorld |first=InfoWorld Media Group |last=Inc |date=19 March 1990 |publisher=InfoWorld Media Group, Inc. |via=Google Books}}</ref>{{nowrap|1='''LS''' = Laser Servo;}} {{nowrap|1='''HiFD''' = High capacity Floppy Disk;}} {{nowrap|1='''SS''' = Single Sided;}} {{nowrap|1='''DS''' = Double Sided}}
|-
|-
| colspan=4 | Formatted storage capacity is total size of all sectors on the disk:
| colspan=4 | Formatted storage capacity is total size of all sectors on the disk:


* For 8-inch see ''[[List of floppy disk formats#IBM 8-inch formats]]''. Spare, hidden and otherwise reserved sectors are included in this number.
* For 8-inch see ''[[List of floppy disk formats#IBM 8-inch formats]]''. Spare, hidden and otherwise reserved sectors are included in this number.
* For {{frac|5|1|4}}- and {{frac|3|1|2}}-inch capacities quoted are from subsystem or system vendor statements.
* For 5¼- and 3½-inch capacities quoted are from subsystem or system vendor statements.


Marketed capacity is the capacity, typically unformatted, by the original media OEM vendor or in the case of IBM media, the first OEM thereafter. Other formats may get more or less capacity from the same drives and disks.
Marketed capacity is the capacity, typically unformatted, by the original media OEM vendor or in the case of IBM media, the first OEM thereafter. Other formats may get more or less capacity from the same drives and disks.
|}
|}


[[File:Box of floppy disks and USB memory stick.jpg|thumb|right|A box of about 80 floppy disks together with one USB memory stick. The stick is capable of holding over 130 times as much data as the entire box of disks put together.]]
[[File:Box of floppy disks and USB memory stick.jpg|thumb|right|The USB stick under the two boxes of about 80 floppy disks is capable of holding over 130 times as much data as the two boxes of disks put together.]]
Data is generally written to floppy disks in sectors (angular blocks) and tracks (concentric rings at a constant radius). For example, the HD format of {{frac|3|1|2}}-inch floppy disks uses 512 bytes per sector, 18 sectors per track, 80 tracks per side and two sides, for a total of 1,474,560 bytes per disk.<ref>{{cite web |url=http://www.lintech.org/comp-per/08FDK.pdf |title=Chapter 8: Floppy Disk Drives |access-date=2011-07-16 |archive-url=https://web.archive.org/web/20120127200411/http://www.lintech.org/comp-per/08FDK.pdf |archive-date=2012-01-27 |url-status=live }}</ref> {{Citation needed|reason=The cited article doesn't contain the information stated.|date=August 2020}} Some disk controllers can vary these parameters at the user's request, increasing storage on the disk, although they may not be able to be read on machines with other controllers. For example, [[Microsoft]] applications were often distributed on {{frac|3|1|2}}-inch 1.68&nbsp;MB [[Distribution Media Format|DMF]] disks formatted with 21 sectors instead of 18; they could still be recognized by a standard controller. On the [[IBM PC]], [[MSX]] and most other microcomputer platforms, disks were written using a [[constant angular velocity]] (CAV) format,<ref name="Mueller"/> with the disk spinning at a constant speed and the sectors holding the same amount of information on each track regardless of radial location.
Data is generally written to floppy disks in sectors (angular blocks) and tracks (concentric rings at a constant radius). For example, the HD format of 3½-inch floppy disks uses 512 bytes per sector, 18 sectors per track, 80 tracks per side and two sides, for a total of 1,474,560 bytes per disk.<ref>{{cite web |url=http://www.lintech.org/comp-per/08FDK.pdf |title=Chapter 8: Floppy Disk Drives |access-date=2011-07-16 |archive-url=https://web.archive.org/web/20120127200411/http://www.lintech.org/comp-per/08FDK.pdf |archive-date=2012-01-27 |url-status=live}}</ref>{{failed verification|reason=Article cited lacks the information stated.|date=August 2020}} Some disk controllers can vary these parameters at the user's request, increasing storage on the disk, although they may not be able to be read on machines with other controllers. For example, [[Microsoft]] applications were often distributed on 3½-inch 1.68&nbsp;MB [[Distribution Media Format|DMF]] disks formatted with 21 sectors instead of 18; they could still be recognized by a standard controller. On the [[IBM PC]], [[MSX]] and most other microcomputer platforms, disks were written using a [[constant angular velocity]] (CAV) format,<ref name="Mueller"/> with the disk spinning at a constant speed and the sectors holding the same amount of information on each track regardless of radial location.


Because the sectors have constant angular size, the 512 bytes in each sector are compressed more near the disk's center. A more space-efficient technique would be to increase the number of sectors per track toward the outer edge of the disk, from 18 to 30 for instance, thereby keeping nearly constant the amount of physical disk space used for storing each sector; an example is [[zone bit recording]]. Apple implemented this in early Macintosh computers by spinning the disk more slowly when the head was at the edge, while maintaining the data rate, allowing 400&nbsp;KB of storage per side and an extra 80&nbsp;KB on a double-sided disk.<ref>{{cite web |title=The Original Macintosh |url=http://www.folklore.org/ProjectView.py?project=Macintosh&index=75&sortOrder=Sort%20by%20Date&detail=high |access-date=2013-12-03 |archive-url=https://web.archive.org/web/20131205100719/http://www.folklore.org/ProjectView.py?project=Macintosh&index=75&sortOrder=Sort%20by%20Date&detail=high |archive-date=2013-12-05 |url-status=live }}</ref> This higher capacity came with a disadvantage: the format used a unique drive mechanism and control circuitry, meaning that Mac disks could not be read on other computers. Apple eventually reverted to constant angular velocity on HD floppy disks with their later machines, still unique to Apple as they supported the older variable-speed formats.
Because the sectors have constant angular size, the 512 bytes in each sector are compressed more near the disk's center. A more space-efficient technique would be to increase the number of sectors per track toward the outer edge of the disk, from 18 to 30 for instance, thereby keeping nearly constant the amount of physical disk space used for storing each sector; an example is [[zone bit recording]]. Apple implemented this in early Macintosh computers by spinning the disk more slowly when the head was at the edge, while maintaining the data rate, allowing 400&nbsp;KB of storage per side and an extra 80&nbsp;KB on a double-sided disk.<ref>{{cite web |title= The Original Macintosh |url= http://www.folklore.org/ProjectView.py?project=Macintosh&index=75&sortOrder=Sort%20by%20Date&detail=high |access-date=2013-12-03 | work = Folklore |archive-url= https://web.archive.org/web/20131205100719/http://www.folklore.org/ProjectView.py?project=Macintosh&index=75&sortOrder=Sort%20by%20Date&detail=high |archive-date= 2013-12-05 |url-status=live}}</ref> This higher capacity came with a disadvantage: the format used a unique drive mechanism and control circuitry, meaning that Mac disks could not be read on other computers. Apple eventually reverted to constant angular velocity on HD floppy disks with their later machines, still unique to Apple as they supported the older variable-speed formats.


[[Disk formatting]] is usually done by a utility program supplied by the computer [[operating system|OS]] manufacturer; generally, it sets up a file storage directory system on the disk, and initializes its sectors and tracks. Areas of the disk unusable for storage due to flaws can be locked (marked as "bad sectors") so that the operating system does not attempt to use them. This was time-consuming so many environments had quick formatting which skipped the error checking process. When floppy disks were often used, disks pre-formatted for popular computers were sold. The unformatted capacity of a floppy disk does not include the sector and track headings of a formatted disk; the difference in storage between them depends on the drive's application. Floppy disk drive and media manufacturers specify the unformatted capacity (for example, 2&nbsp;MB for a standard {{frac|3|1|2}}-inch HD floppy). It is implied that this should not be exceeded, since doing so will most likely result in performance problems. [[Distribution Media Format|DMF]] was introduced permitting 1.68&nbsp;MB to fit onto an otherwise standard {{frac|3|1|2}}-inch disk; utilities then appeared allowing disks to be formatted as such.
[[Disk formatting]] is usually done by a utility program supplied by the computer [[operating system|OS]] manufacturer; generally, it sets up a file storage directory system on the disk, and initializes its sectors and tracks. Areas of the disk unusable for storage due to flaws can be locked (marked as "bad sectors") so that the operating system does not attempt to use them. This was time-consuming so many environments had quick formatting which skipped the error checking process. When floppy disks were often used, disks pre-formatted for popular computers were sold. The unformatted capacity of a floppy disk does not include the sector and track headings of a formatted disk; the difference in storage between them depends on the drive's application. Floppy disk drive and media manufacturers specify the unformatted capacity (for example, 2&nbsp;MB for a standard 3½-inch HD floppy). It is implied that this should not be exceeded, since doing so will most likely result in performance problems. [[Distribution Media Format|DMF]] was introduced permitting 1.68&nbsp;MB to fit onto an otherwise standard 3½-inch disk; utilities then appeared allowing disks to be formatted as such.


[[Binary prefix#Floppy drives|Mixtures]] of decimal prefixes and binary sector sizes require care to properly calculate total capacity. Whereas semiconductor memory naturally favors powers of two (size doubles each time an address pin is added to the integrated circuit), the capacity of a disk drive is the product of sector size, sectors per track, tracks per side and sides (which in hard disk drives with multiple platters can be greater than 2). Although other sector sizes have been known in the past, formatted sector sizes are now almost always set to powers of two (256 bytes, 512 bytes, etc.), and, in some cases, disk capacity is calculated as multiples of the sector size rather than only in bytes, leading to a combination of decimal multiples of sectors and binary sector sizes. For example, 1.44&nbsp;MB {{frac|3|1|2}}-inch HD disks have the "M" prefix peculiar to their context, coming from their capacity of 2,880 512-byte sectors (1,440 KiB), consistent with neither a decimal [[megabyte]] nor a binary [[mebibyte]] (MiB). Hence, these disks hold 1.47&nbsp;MB or 1.41&nbsp;MiB. Usable data capacity is a function of the disk format used, which in turn is determined by the FDD controller and its settings. Differences between such formats can result in capacities ranging from approximately 1300 to 1760 KiB (1.80&nbsp;MB) on a standard {{frac|3|1|2}}-inch high-density floppy (and up to nearly 2&nbsp;MB with utilities such as [[2M (DOS)|2M/2MGUI]]). The highest capacity techniques require much tighter matching of drive head geometry between drives, something not always possible and unreliable. For example, the [[LS-240]] drive supports a 32&nbsp;MB capacity on standard {{frac|3|1|2}}-inch HD disks,<ref>{{cite web |title=PROPERTIES OF STORAGE SYSTEMS |url=http://www.mtsac.edu/~rpatters/CISB11/Chapters/Chapter_03/Chap03/LectureMain.htm |publisher=Mt. San Antonio College |url-status=dead |archive-url=https://web.archive.org/web/20131207142330/http://www.mtsac.edu/~rpatters/CISB11/Chapters/Chapter_03/Chap03/LectureMain.htm |archive-date=2013-12-07}}</ref> but it is, however, a write-once technique, and requires its own drive.
[[Binary prefix#Floppy drives|Mixtures]] of decimal prefixes and binary sector sizes require care to properly calculate total capacity. Whereas semiconductor memory naturally favors powers of two (size doubles each time an address pin is added to the integrated circuit), the capacity of a disk drive is the product of sector size, sectors per track, tracks per side and sides (which in hard disk drives with multiple platters can be greater than 2). Although other sector sizes have been known in the past, formatted sector sizes are now almost always set to powers of two (256 bytes, 512 bytes, etc.), and, in some cases, disk capacity is calculated as multiples of the sector size rather than only in bytes, leading to a combination of decimal multiples of sectors and binary sector sizes. For example, 1.44&nbsp;MB 3½-inch HD disks have the "M" prefix peculiar to their context, coming from their capacity of 2,880 512-byte sectors (1,440&nbsp;KiB), consistent with neither a decimal [[megabyte]] nor a binary [[mebibyte]] (MiB). Hence, these disks hold 1.47&nbsp;MB or 1.41&nbsp;MiB. Usable data capacity is a function of the disk format used, which in turn is determined by the FDD controller and its settings. Differences between such formats can result in capacities ranging from approximately 1,300 to 1,760&nbsp;KiB (1.80&nbsp;MB) on a standard 3½-inch high-density floppy (and up to nearly 2&nbsp;MB with utilities such as [[2M (DOS)|2M/2MGUI]]). The highest capacity techniques require much tighter matching of drive head geometry between drives, something not always possible and unreliable. For example, the [[LS-240]] drive supports a 32&nbsp;MB capacity on standard 3½-inch HD disks,<ref>{{cite web |title=Properties of Storage Systems |url= http://www.mtsac.edu/~rpatters/CISB11/Chapters/Chapter_03/Chap03/LectureMain.htm |publisher=Mt. San Antonio College |url-status= dead |archive-url= https://web.archive.org/web/20131207142330/http://www.mtsac.edu/~rpatters/CISB11/Chapters/Chapter_03/Chap03/LectureMain.htm |archive-date= 2013-12-07}}</ref> but this is a write-once technique, and requires its own drive.


The raw maximum transfer rate of {{frac|3|1|2}}-inch ED floppy drives (2.88&nbsp;MB) is nominally 1,000&nbsp;[[kilobit]]s/s, or approximately 83% that of single-speed CD‑ROM (71% of audio CD). This represents the speed of raw data bits moving under the read head; however, the effective speed is somewhat less due to space used for headers, gaps and other format fields and can be even further reduced by delays to seek between tracks.
The raw maximum transfer rate of 3½-inch ED floppy drives (2.88&nbsp;MB) is nominally 1,000&nbsp;[[kilobit]]s/s, or approximately 83% that of single-speed CD‑ROM (71% of audio CD). This represents the speed of raw data bits moving under the read head; however, the effective speed is somewhat less due to space used for headers, gaps and other format fields and can be even further reduced by delays to seek between tracks.


==See also==
==See also==
{{Portal|Physics|Electronics}}
{{Portal|Physics|Electronics}}
* [[Berg connector]] for {{frac|3|1|2}}-inch floppy drive
* [[Berg connector]] for 3½-inch floppy drive
* [[dd (Unix)]]
* [[dd (Unix)]]
* [[Disk image]]
* [[Disk image]]
* [[Don't Copy That Floppy]]
* [[Don't Copy That Floppy]]
* [[Floppy disk controller]]
* [[Floppy disk hardware emulator]]
* [[Floppy disk hardware emulator]]
* [[Floppy disk variants]]
* [[Floppy disk variants]]
* [[Hard disk drive]]
* [[Hard disk drive]]
* [[History of the floppy disk]]
* [[Shugart bus]] – popular mainly for 8-inch drives, and partially for {{frac|5|1|4}}-inch
* [[List of floppy disk formats]]
* [[Shugart bus]] – popular mainly for 8-inch drives, and partially for 5¼-inch
* [[IBM Extended Density Format|XDF]]
* [[IBM Extended Density Format|XDF]]
* [[Zip drive]]
* [[VGA-Copy]] copy tool (retries on errors, over-formatted floppies), DOS, discontinued
* [[VGA-Copy]] copy tool (retries on errors, over-formatted floppies), DOS, discontinued
* [[MO disc]]
* [[Write precompensation]]
* [[X10 accelerated floppy drive]]
* [[Zip drive]]


==Notes==
==Notes==
{{notelist}}
{{notelist}}
{{Reflist|group="nb"|refs=
{{Reflist|group="nb"|refs=
<ref group="nb" name="NB_Hyperdrive">"Hyper drive" was an alternative name for 5¼-inch 80-track HD floppy drives with 1.2&nbsp;MB capacity. The term was used, for example, by [[Philips Austria]] for their [[Philips :YES]] and [[Digital Research]] in conjunction with [[DOS Plus]].</ref>
<ref group="nb" name="NB_SA">However, called "stiffy" in South Africa.</ref>
<ref group="nb" name="NB_Hyperdrive">"Hyper drive" was an alternative name for {{frac|5|1|4}}-inch 80-track HD floppy drives with 1.2&nbsp;MB capacity. The term was used f.e. by [[Philips Austria]] for their [[Philips :YES]] and [[Digital Research]] in conjunction with [[DOS Plus]].</ref>
<ref group="nb" name="NB_Costs">The cost of a hard disk with a controller in the mid 1980s was thousands of dollars, for capacity of 80&nbsp;MB or less.</ref>
<ref group="nb" name="NB_Costs">The cost of a hard disk with a controller in the mid 1980s was thousands of dollars, for capacity of 80&nbsp;MB or less.</ref>
}}
}}
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==Further reading==
==Further reading==
* Weyhrich, Steven (2005). [https://web.archive.org/web/20061201122002/http://apple2history.org/history/ah05.html "The Disk II"]: A detailed essay describing one of the first commercial floppy disk drives (from the Apple II History website).
* Weyhrich, Steven (2005). [https://web.archive.org/web/20061201122002/http://apple2history.org/history/ah05.html "The Disk II"]: A detailed essay describing one of the first commercial floppy disk drives (from the Apple II History website).
* Immers, Richard; Neufeld, Gerald G. (1984). ''Inside Commodore DOS The Complete Guide to the 1541 Disk Operating System''. DATAMOST & Reston Publishing Company (Prentice-Hall). {{ISBN|0-8359-3091-2}}.
* Immers, Richard; Neufeld, Gerald G. (1984). ''Inside Commodore DOS: The Complete Guide to the 1541 Disk Operating System''. Datamost & Reston Publishing Company (Prentice-Hall). {{ISBN|0-8359-3091-2}}.
* Englisch, Lothar; Szczepanowski, Norbert (1984). ''The Anatomy of the 1541 Disk Drive''. Grand Rapids, Michigan, USA, Abacus Software (translated from the original 1983 German edition, Düsseldorf, Data Becker GmbH). {{ISBN|0-916439-01-1}}.
* Englisch, Lothar; Szczepanowski, Norbert (1984). ''The Anatomy of the 1541 Disk Drive''. Grand Rapids, Michigan, USA, Abacus Software (translated from the original 1983 German edition, Düsseldorf, Data Becker GmbH). {{ISBN|0-916439-01-1}}.
* Hewlett Packard: 9121D/S Disc Memory Operator's Manual; printed 1 September 1982; [http://hpmuseum.net/document.php?hwfile=2702 part number 09121-90000].
* Hewlett Packard: 9121D/S Disc Memory Operator's Manual; printed 1 September 1982; [http://hpmuseum.net/document.php?hwfile=2702 part number 09121-90000].
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* [http://www.retrotechnology.com/herbs_stuff/drive.html Floppy disk drives and media technical information]
* [http://www.retrotechnology.com/herbs_stuff/drive.html Floppy disk drives and media technical information]
* [http://www.hermannseib.com/documents/floppy.pdf The Floppy User Guide -historical technical material]
* [http://www.hermannseib.com/documents/floppy.pdf The Floppy User Guide -historical technical material]
* [http://www.pcguide.com/ref/fdd/formatSummary-c.html Summary of Floppy Disk Types and Specifications]
* [http://www.pcguide.com/ref/fdd/formatSummary-c.html Summary of Floppy Disk Types and Specifications] {{Webarchive|url=https://web.archive.org/web/20180917052807/http://www.pcguide.com/ref/fdd/formatSummary-c.html |date=17 September 2018 }}


{{Magnetic storage media}}
{{Magnetic storage media}}
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[[Category:Computer storage media]]
[[Category:Computer storage media]]
[[Category:Floppy disk computer storage| ]]
[[Category:Floppy disk computer storage| ]]
[[Category:Legacy hardware]]
[[Category:Rotating disc computer storage media]]
[[Category:Rotating disc computer storage media]]
[[Category:20th-century inventions]]
[[Category:20th-century inventions]]
[[Category:Legacy hardware]]

Revision as of 14:46, 14 May 2024

8-inch, 5¼-inch, and 3½-inch floppy disks
8-inch, 5¼-inch (full height), and 3½-inch drives
A 3½-inch floppy disk removed from its housing

A floppy disk or floppy diskette (casually referred to as a floppy, a diskette, or a disk) is a type of disk storage composed of a thin and flexible disk of a magnetic storage medium in a square or nearly square plastic enclosure lined with a fabric that removes dust particles from the spinning disk. Floppy disks store digital data which can be read and written when the disk is inserted into a floppy disk drive (FDD) connected to or inside a computer or other device.

The first floppy disks, invented and made by IBM in 1971,[1] had a disk diameter of 8 inches (203.2 mm).[2] Subsequently, the 5¼-inch (133.35 mm) and then the 3½-inch (88.9 mm) became a ubiquitous form of data storage and transfer into the first years of the 21st century.[3] 3½-inch floppy disks can still be used with an external USB floppy disk drive. USB drives for 5¼-inch, 8-inch, and other-size floppy disks are rare to non-existent. Some individuals and organizations continue to use older equipment to read or transfer data from floppy disks.

Floppy disks were so common in late 20th-century culture that many electronic and software programs continue to use save icons that look like floppy disks well into the 21st century, as a form of skeuomorphic design. While floppy disk drives still have some limited uses, especially with legacy industrial computer equipment, they have been superseded by data storage methods with much greater data storage capacity and data transfer speed, such as USB flash drives, memory cards, optical discs, and storage available through local computer networks and cloud storage.

History

8-inch floppy disk,
inserted in drive,
(3½-inch floppy diskette,
in front, shown for scale)
3½-inch, high-density floppy diskettes with adhesive labels affixed

The first commercial floppy disks, developed in the late 1960s, were 8 inches (203.2 mm) in diameter;[2][3] they became commercially available in 1971 as a component of IBM products and both drives and disks were then sold separately starting in 1972 by Memorex and others.[4] These disks and associated drives were produced and improved upon by IBM and other companies such as Memorex, Shugart Associates, and Burroughs Corporation.[5] The term "floppy disk" appeared in print as early as 1970,[6] and although IBM announced its first media as the Type 1 Diskette in 1973, the industry continued to use the terms "floppy disk" or "floppy".

In 1976, Shugart Associates introduced the 5¼-inch FDD. By 1978, there were more than ten manufacturers producing such FDDs.[7] There were competing floppy disk formats, with hard- and soft-sector versions and encoding schemes such as differential Manchester encoding (DM), modified frequency modulation (MFM), M2FM and group coded recording (GCR). The 5¼-inch format displaced the 8-inch one for most uses, and the hard-sectored disk format disappeared. The most common capacity of the 5¼-inch format in DOS-based PCs was 360 KB (368,640 bytes) for the Double-Sided Double-Density (DSDD) format using MFM encoding.

In 1984, IBM introduced with its PC/AT the 1.2 MB (1,228,800 bytes) dual-sided 5¼-inch floppy disk, but it never became very popular. IBM started using the 720 KB double density 3½-inch microfloppy disk on its Convertible laptop computer in 1986 and the 1.44 MB high-density version with the IBM Personal System/2 (PS/2) line in 1987. These disk drives could be added to older PC models. In 1988, Y-E Data introduced a drive for 2.88 MB Double-Sided Extended-Density (DSED) diskettes which was used by IBM in its top-of-the-line PS/2 and some RS/6000 models and in the second-generation NeXTcube and NeXTstation; however, this format had limited market success due to lack of standards and movement to 1.44 MB drives.[8]

Throughout the early 1980s, limits of the 5¼-inch format became clear. Originally designed to be more practical than the 8-inch format, it was becoming considered too large; as the quality of recording media grew, data could be stored in a smaller area.[9] Several solutions were developed, with drives at 2-, 2½-, 3-, 3¼-,[10] 3½- and 4-inches (and Sony's 90 mm × 94 mm (3.54 in × 3.70 in) disk) offered by various companies.[9] They all had several advantages over the old format, including a rigid case with a sliding metal (or later, sometimes plastic) shutter over the head slot, which helped protect the delicate magnetic medium from dust and damage, and a sliding write protection tab, which was far more convenient than the adhesive tabs used with earlier disks. The large market share of the well-established 5¼-inch format made it difficult for these diverse mutually-incompatible new formats to gain significant market share.[9] A variant on the Sony design, introduced in 1983 by many manufacturers, was then rapidly adopted. By 1988, the 3½-inch was outselling the 5¼-inch.[11]

Generally, the term floppy disk persisted, even though later style floppy disks have a rigid case around an internal floppy disk.

By the end of the 1980s, 5¼-inch disks had been superseded by 3½-inch disks. During this time, PCs frequently came equipped with drives of both sizes. By the mid-1990s, 5¼-inch drives had virtually disappeared, as the 3½-inch disk became the predominant floppy disk. The advantages of the 3½-inch disk were its higher capacity, its smaller physical size, and its rigid case which provided better protection from dirt and other environmental risks.

Prevalence

Imation USB floppy drive, model 01946: an external drive that accepts high-density disks

Floppy disks became commonplace during the 1980s and 1990s in their use with personal computers to distribute software, transfer data, and create backups. Before hard disks became affordable to the general population,[nb 1] floppy disks were often used to store a computer's operating system (OS). Most home computers from that time have an elementary OS and BASIC stored in read-only memory (ROM), with the option of loading a more advanced OS from a floppy disk.

By the early 1990s, the increasing software size meant large packages like Windows or Adobe Photoshop required a dozen disks or more. In 1996, there were an estimated five billion standard floppy disks in use.[12]

An attempt to enhance the existing 3½-inch designs was the SuperDisk in the late 1990s, using very narrow data tracks and a high precision head guidance mechanism with a capacity of 120 MB[13] and backward-compatibility with standard 3½-inch floppies; a format war briefly occurred between SuperDisk and other high-density floppy-disk products, although ultimately recordable CDs/DVDs, solid-state flash storage, and eventually cloud-based online storage would render all these removable disk formats obsolete. External USB-based floppy disk drives are still available, and many modern systems provide firmware support for booting from such drives.

Gradual transition to other formats

Front and rear of a retail 3½-inch and 5¼-inch floppy disk drive cleaning kit, as sold in Australia at retailer Big W, circa early 1990s
A collection of removable data storage media: Floppy disks, flash memory media, tape-based media, and optical discs

In the mid-1990s, mechanically incompatible higher-density floppy disks were introduced, like the Iomega Zip disk. Adoption was limited by the competition between proprietary formats and the need to buy expensive drives for computers where the disks would be used. In some cases, failure in market penetration was exacerbated by the release of higher-capacity versions of the drive and media being not backward-compatible with the original drives, dividing the users between new and old adopters. Consumers were wary of making costly investments into unproven and rapidly changing technologies, so none of the technologies became the established standard.

Apple introduced the iMac G3 in 1998 with a CD-ROM drive but no floppy drive; this made USB-connected floppy drives popular accessories, as the iMac came without any writable removable media device.

Recordable CDs were touted as an alternative, because of the greater capacity, compatibility with existing CD-ROM drives, and—with the advent of re-writeable CDs and packet writing—a similar reusability as floppy disks. However, CD-R/RWs remained mostly an archival medium, not a medium for exchanging data or editing files on the medium itself, because there was no common standard for packet writing which allowed for small updates. Other formats, such as magneto-optical discs, had the flexibility of floppy disks combined with greater capacity, but remained niche due to costs. High-capacity backward compatible floppy technologies became popular for a while and were sold as an option or even included in standard PCs, but in the long run, their use was limited to professionals and enthusiasts.

Flash-based USB-thumb drives finally were a practical and popular replacement, that supported traditional file systems and all common usage scenarios of floppy disks. As opposed to other solutions, no new drive type or special software was required that impeded adoption, since all that was necessary was an already common USB port.

Usage in the 21st century

A floppy hardware emulator, same size as a 3½-inch drive, provides a USB interface to the user.

By 2002, most manufacturers still provided floppy disk drives as standard equipment to meet user demand for file-transfer and an emergency boot device, as well as for the general secure feeling of having the familiar device.[14] By this time, the retail cost of a floppy drive had fallen to around $20 (equivalent to $34 in 2023), so there was little financial incentive to omit the device from a system. Subsequently, enabled by the widespread support for USB flash drives and BIOS boot, manufacturers and retailers progressively reduced the availability of floppy disk drives as standard equipment. In February 2003, Dell, one of the leading personal computer vendors, announced that floppy drives would no longer be pre-installed on Dell Dimension home computers, although they were still available as a selectable option and purchasable as an aftermarket OEM add-on.[15] By January 2007, only 2% of computers sold in stores contained built-in floppy disk drives.[16]

Floppy disks are used for emergency boots in aging systems lacking support for other bootable media and for BIOS updates, since most BIOS and firmware programs can still be executed from bootable floppy disks. If BIOS updates fail or become corrupt, floppy drives can sometimes be used to perform a recovery. The music and theatre industries still use equipment requiring standard floppy disks (e.g. synthesizers, samplers, drum machines, sequencers, and lighting consoles). Industrial automation equipment such as programmable machinery and industrial robots may not have a USB interface; data and programs are then loaded from disks, damageable in industrial environments. This equipment may not be replaced due to cost or requirement for continuous availability; existing software emulation and virtualization do not solve this problem because a customized operating system is used that has no drivers for USB devices. Hardware floppy disk emulators can be made to interface floppy-disk controllers to a USB port that can be used for flash drives.

In May 2016, the United States Government Accountability Office released a report that covered the need to upgrade or replace legacy computer systems within federal agencies. According to this document, old IBM Series/1 minicomputers running on 8-inch floppy disks are still used to coordinate "the operational functions of the United States' nuclear forces". The government planned to update some of the technology by the end of the 2017 fiscal year.[17][18]

Windows 10 and Windows 11 no longer come with drivers for floppy disk drives (both internal and external). However, they will still support them with a separate device driver provided by Microsoft.[19]

The British Airways Boeing 747-400 fleet, up to its retirement in 2020, used 3½-inch floppy disks to load avionics software.[20]

Sony, who had been in the floppy disk business since 1983, ended domestic sales of all six 3½-inch floppy disk models as of March 2011.[21] This has been viewed by some as the end of the floppy disk.[22] While production of new floppy disk media has ceased,[23] sales and uses of this media from inventories is expected to continue until at least 2026.[24]

Legacy

Screenshot depicting a floppy disk as "save" icon

For more than two decades, the floppy disk was the primary external writable storage device used. Most computing environments before the 1990s were non-networked, and floppy disks were the primary means to transfer data between computers, a method known informally as sneakernet. Unlike hard disks, floppy disks are handled and seen; even a novice user can identify a floppy disk. Because of these factors, a picture of a 3½-inch floppy disk became an interface metaphor for saving data. The floppy disk symbol is still used by software on user-interface elements related to saving files (such as LibreOffice) even though physical floppy disks are largely obsolete.[24]

Design

Structure

8-inch and 5¼-inch disks

The inside of a destructively disassembled 8-inch floppy disk
A disk notcher punch, which could make read-only 5¼" floppies writable, and convert certain single-sided 5¼-inch diskettes to double-sided, by adding cutouts drives expected to sense.

The 8-inch and 5¼-inch floppy disks contain a magnetically coated round plastic medium with a large circular hole in the center for a drive's spindle. The medium is contained in a square plastic cover that has a small oblong opening in both sides to allow the drive's heads to read and write data and a large hole in the center to allow the magnetic medium to spin by rotating it from its middle hole.

Inside the cover are two layers of fabric with the magnetic medium sandwiched in the middle. The fabric is designed to reduce friction between the medium and the outer cover, and catch particles of debris abraded off the disk to keep them from accumulating on the heads. The cover is usually a one-part sheet, double-folded with flaps glued or spot-welded together.

A small notch on the side of the disk identifies whether it is writable, as detected by a mechanical switch or photoelectric sensor. In the 8-inch disk, the notch being covered or not present enables writing, while in the 5¼-inch disk, the notch being present and uncovered enables writing. Tape may be used over the notch to change the mode of the disk. Punch devices were sold to convert read-only 5¼" disks to writable ones, and also to enable writing on the unused side of single-sided disks for computers with single-sided drives. The latter worked because single- and double-sided disks typically contained essentially identical actual magnetic media, for manufacturing efficiency. Disks whose obverse and reverse sides were thus used separately in single-sided drives were known as flippy disks. Disk notching 5¼" floppies for PCs was generally only required where users wanted to overwrite original 5¼" disks of store-bought software, which somewhat commonly shipped with no notch present.

Another LED/photo-transistor pair located near the center of the disk detects the index hole once per rotation in the magnetic disk. Detection occurs whenever the drive's sensor, the holes in the correctly inserted floppy's plastic envelope and a single hole in the rotating floppy disk medium line up. This mechanism is used to detect the angular start of each track, and whether or not the disk is rotating at the correct speed. Early 8‑inch and 5¼‑inch disks also had holes for each sector in the enclosed magnetic medium, in addition to the index hole,[25] with the same radial distance from the center, for alignment with the same envelope hole. These were termed hard sectored disks. Later soft-sectored disks have only one index hole in the medium, and sector position is determined by the disk controller or low-level software from patterns marking the start of a sector. Generally, the same drives are used to read and write both types of disks, with only the disks and controllers differing. Some operating systems using soft sectors, such as Apple DOS, do not use the index hole, and the drives designed for such systems often lack the corresponding sensor; this was mainly a hardware cost-saving measure.[26]

3½-inch disk

Rear side of a 3½-inch floppy disk in a transparent case, showing its internal parts

The core of the 3½-inch disk is the same as the other two disks, but the front has only a label and a small opening for reading and writing data, protected by the shutter—a spring-loaded metal or plastic cover, pushed to the side on entry into the drive. Rather than having a hole in the center, it has a metal hub which mates to the spindle of the drive. Typical 3½-inch disk magnetic coating materials are:[27]

Two holes at the bottom left and right indicate whether the disk is write-protected and whether it is high-density; these holes are spaced as far apart as the holes in punched A4 paper, allowing write-protected high-density floppies to be clipped into international standard (ISO 838) ring binders. The dimensions of the disk shell are not quite square: its width is slightly less than its depth, so that it is impossible to insert the disk into a drive slot sideways (i.e. rotated 90 degrees from the correct shutter-first orientation). A diagonal notch at top right ensures that the disk is inserted into the drive in the correct orientation—not upside down or label-end first—and an arrow at top left indicates direction of insertion. The drive usually has a button that, when pressed, ejects the disk with varying degrees of force, the discrepancy due to the ejection force provided by the spring of the shutter. In IBM PC compatibles, Commodores, Apple II/IIIs, and other non-Apple-Macintosh machines with standard floppy disk drives, a disk may be ejected manually at any time. The drive has a disk-change switch that detects when a disk is ejected or inserted. Failure of this mechanical switch is a common source of disk corruption if a disk is changed and the drive (and hence the operating system) fails to notice.

One of the chief usability problems of the floppy disk is its vulnerability; even inside a closed plastic housing, the disk medium is highly sensitive to dust, condensation and temperature extremes. As with all magnetic storage, it is vulnerable to magnetic fields. Blank disks have been distributed with an extensive set of warnings, cautioning the user not to expose it to dangerous conditions. Rough treatment or removing the disk from the drive while the magnetic media is still spinning is likely to cause damage to the disk, drive head, or stored data. On the other hand, the 3½‑inch floppy has been lauded for its mechanical usability by human–computer interaction expert Donald Norman:[28]

A simple example of a good design is the 3½-inch magnetic diskette for computers, a small circle of floppy magnetic material encased in hard plastic. Earlier types of floppy disks did not have this plastic case, which protects the magnetic material from abuse and damage. A sliding metal cover protects the delicate magnetic surface when the diskette is not in use and automatically opens when the diskette is inserted into the computer. The diskette has a square shape: there are apparently eight possible ways to insert it into the machine, only one of which is correct. What happens if I do it wrong? I try inserting the disk sideways. Ah, the designer thought of that. A little study shows that the case really isn't square: it's rectangular, so you can't insert a longer side. I try backward. The diskette goes in only part of the way. Small protrusions, indentations, and cutouts prevent the diskette from being inserted backward or upside down: of the eight ways one might try to insert the diskette, only one is correct, and only that one will fit. An excellent design.

The spindle motor from a 3½‑inch unit
A read-write head from a 3½‑inch unit

Operation

How the read-write head is applied on the floppy
Visualization of magnetic information on floppy disk (image recorded with CMOS-MagView)

A spindle motor in the drive rotates the magnetic medium at a certain speed, while a stepper motor-operated mechanism moves the magnetic read/write heads radially along the surface of the disk. Both read and write operations require the media to be rotating and the head to contact the disk media, an action originally accomplished by a disk-load solenoid.[29] Later drives held the heads out of contact until a front-panel lever was rotated (5¼-inch) or disk insertion was complete (3½-inch). To write data, current is sent through a coil in the head as the media rotates. The head's magnetic field aligns the magnetization of the particles directly below the head on the media. When the current is reversed the magnetization aligns in the opposite direction, encoding one bit of data. To read data, the magnetization of the particles in the media induce a tiny voltage in the head coil as they pass under it. This small signal is amplified and sent to the floppy disk controller, which converts the streams of pulses from the media into data, checks it for errors, and sends it to the host computer system.

Formatting

A blank unformatted diskette has a coating of magnetic oxide with no magnetic order to the particles. During formatting, the magnetizations of the particles are aligned forming tracks, each broken up into sectors, enabling the controller to properly read and write data. The tracks are concentric rings around the center, with spaces between tracks where no data is written; gaps with padding bytes are provided between the sectors and at the end of the track to allow for slight speed variations in the disk drive, and to permit better interoperability with disk drives connected to other similar systems.

Each sector of data has a header that identifies the sector location on the disk. A cyclic redundancy check (CRC) is written into the sector headers and at the end of the user data so that the disk controller can detect potential errors.

Some errors are soft and can be resolved by automatically re-trying the read operation; other errors are permanent and the disk controller will signal a failure to the operating system if multiple attempts to read the data still fail.

Insertion and ejection

After a disk is inserted, a catch or lever at the front of the drive is manually lowered to prevent the disk from accidentally emerging, engage the spindle clamping hub, and in two-sided drives, engage the second read/write head with the media.

In some 5¼-inch drives, insertion of the disk compresses and locks an ejection spring which partially ejects the disk upon opening the catch or lever. This enables a smaller concave area for the thumb and fingers to grasp the disk during removal.

Newer 5¼-inch drives and all 3½-inch drives automatically engage the spindle and heads when a disk is inserted, doing the opposite with the press of the eject button.

On Apple Macintosh computers with built-in 3½-inch disk drives, the ejection button is replaced by software controlling an ejection motor which only does so when the operating system no longer needs to access the drive. The user could drag the image of the floppy drive to the trash can on the desktop to eject the disk. In the case of a power failure or drive malfunction, a loaded disk can be removed manually by inserting a straightened paper clip into a small hole at the drive's front panel, just as one would do with a CD-ROM drive in a similar situation. The Sharp X68000 featured soft-eject 5¼-inch drives. Some late-generation IBM PS/2 machines had soft-eject 3½-inch disk drives as well for which some issues of DOS (i.e. PC DOS 5.02 and higher) offered an EJECT command.

Finding track zero

Before a disk can be accessed, the drive needs to synchronize its head position with the disk tracks. In some drives, this is accomplished with a Track Zero Sensor, while for others it involves the drive head striking an immobile reference surface.

In either case, the head is moved so that it is approaching track zero position of the disk. When a drive with the sensor has reached track zero, the head stops moving immediately and is correctly aligned. For a drive without the sensor, the mechanism attempts to move the head the maximum possible number of positions needed to reach track zero, knowing that once this motion is complete, the head will be positioned over track zero.

Some drive mechanisms such as the Apple II 5¼-inch drive without a track zero sensor, produce characteristic mechanical noises when trying to move the heads past the reference surface. This physical striking is responsible for the 5¼-inch drive clicking during the boot of an Apple II, and the loud rattles of its DOS and ProDOS when disk errors occurred and track zero synchronization was attempted.

Finding sectors

All 8-inch and some 5¼-inch drives used a mechanical method to locate sectors, known as either hard sectors or soft sectors, and is the purpose of the small hole in the jacket, off to the side of the spindle hole. A light beam sensor detects when a punched hole in the disk is visible through the hole in the jacket.

For a soft-sectored disk, there is only a single hole, which is used to locate the first sector of each track. Clock timing is then used to find the other sectors behind it, which requires precise speed regulation of the drive motor.

For a hard-sectored disk, there are many holes, one for each sector row, plus an additional hole in a half-sector position, that is used to indicate sector zero.

The Apple II computer system is notable in that it did not have an index hole sensor and ignored the presence of hard or soft sectoring. Instead, it used special repeating data synchronization patterns written to the disk between each sector, to assist the computer in finding and synchronizing with the data in each track.

The later 3½-inch drives of the mid-1980s did not use sector index holes, but instead also used synchronization patterns.

Most 3½-inch drives used a constant speed drive motor and contain the same number of sectors across all tracks. This is sometimes referred to as Constant Angular Velocity (CAV). In order to fit more data onto a disk, some 3½-inch drives (notably the Macintosh External 400K and 800K drives) instead use Constant Linear Velocity (CLV), which uses a variable speed drive motor that spins more slowly as the head moves away from the center of the disk, maintaining the same speed of the head(s) relative to the surface(s) of the disk. This allows more sectors to be written to the longer middle and outer tracks as the track length increases.

Sizes

While the original IBM 8-inch disk was actually so defined, the other sizes are defined in the metric system, their usual names being but rough approximations.[30]

Different sizes of floppy disks are mechanically incompatible, and disks can fit only one size of drive. Drive assemblies with both 3½-inch and 5¼-inch slots were available during the transition period between the sizes, but they contained two separate drive mechanisms. In addition, there are many subtle, usually software-driven incompatibilities between the two. 5¼-inch disks formatted for use with Apple II computers would be unreadable and treated as unformatted on a Commodore. As computer platforms began to form, attempts were made at interchangeability. For example, the "SuperDrive" included from the Macintosh SE to the Power Macintosh G3 could read, write and format IBM PC format 3½-inch disks, but few IBM-compatible computers had drives that did the reverse. 8-inch, 5¼-inch and 3½-inch drives were manufactured in a variety of sizes, most to fit standardized drive bays. Alongside the common disk sizes were non-classical sizes for specialized systems.

8-inch floppy disk

8-inch floppy disk

Floppy disks of the first standard are 8 inches in diameter,[2] protected by a flexible plastic jacket. It was a read-only device used by IBM as a way of loading microcode.[31] Read/write floppy disks and their drives became available in 1972, but it was IBM's 1973 introduction of the 3740 data entry system[32] that began the establishment of floppy disks, called by IBM the Diskette 1, as an industry standard for information interchange. Formatted diskette for this system store 242,944 bytes.[33] Early microcomputers used for engineering, business, or word processing often used one or more 8-inch disk drives for removable storage; the CP/M operating system was developed for microcomputers with 8-inch drives.

The family of 8-inch disks and drives increased over time and later versions could store up to 1.2 MB;[34] many microcomputer applications did not need that much capacity on one disk, so a smaller size disk with lower-cost media and drives was feasible. The 5¼-inch drive succeeded the 8-inch size in many applications, and developed to about the same storage capacity as the original 8-inch size, using higher-density media and recording techniques.

5¼-inch floppy disk

5¼-inch floppies, front and back
Uncovered 5¼‑inch disk mechanism with disk inserted

The head gap of an 80‑track high-density (1.2 MB in the MFM format) 5¼‑inch drive (a.k.a. Mini diskette, Mini disk, or Minifloppy) is smaller than that of a 40‑track double-density (360 KB if double-sided) drive but can also format, read and write 40‑track disks provided the controller supports double stepping or has a switch to do so. 5¼-inch 80-track drives were also called hyper drives.[nb 2] A blank 40‑track disk formatted and written on an 80‑track drive can be taken to its native drive without problems, and a disk formatted on a 40‑track drive can be used on an 80‑track drive. Disks written on a 40‑track drive and then updated on an 80 track drive become unreadable on any 40‑track drives due to track width incompatibility.

Single-sided disks were coated on both sides, despite the availability of more expensive double sided disks. The reason usually given for the higher price was that double sided disks were certified error-free on both sides of the media. Double-sided disks could be used in some drives for single-sided disks, as long as an index signal was not needed. This was done one side at a time, by turning them over (flippy disks); more expensive dual-head drives which could read both sides without turning over were later produced, and eventually became used universally.

3½-inch floppy disk

Internal parts of a 3½-inch floppy disk.
  1. A hole that indicates a high-capacity disk.
  2. The hub that engages with the drive motor.
  3. A shutter that protects the surface when removed from the drive.
  4. The plastic housing.
  5. A polyester sheet reducing friction against the disk media as it rotates within the housing.
  6. The magnetic coated plastic disk.
  7. A schematic representation of one sector of data on the disk; the tracks and sectors are not visible on actual disks.
  8. The write protection tab (unlabeled) in upper left.
A 3½-inch floppy disk drive

In the early 1980s, many manufacturers introduced smaller floppy drives and media in various formats. A consortium of 21 companies eventually settled on a 3½-inch design known as the Micro diskette, Micro disk, or Micro floppy, similar to a Sony design but improved to support both single-sided and double-sided media, with formatted capacities generally of 360 KB and 720 KB respectively. Single-sided drives of the consortium design first shipped in 1983,[35] and double-sided in 1984. The double-sided, high-density 1.44 MB (actually 1440 KiB = 1.41 MiB) disk drive, which would become the most popular, first shipped in 1986.[36] The first Macintosh computers used single-sided 3½-inch floppy disks, but with 400 KB formatted capacity. These were followed in 1986 by double-sided 800 KB floppies. The higher capacity was achieved at the same recording density by varying the disk-rotation speed with head position so that the linear speed of the disk was closer to constant. Later Macs could also read and write 1.44 MB HD disks in PC format with fixed rotation speed. Higher capacities were similarly achieved by Acorn's RISC OS (800 KB for DD, 1,600 KB for HD) and AmigaOS (880 KB for DD, 1,760 KB for HD).

All 3½-inch disks have a rectangular hole in one corner which, if obstructed, write-enables the disk. A sliding detented piece can be moved to block or reveal the part of the rectangular hole that is sensed by the drive. The HD 1.44 MB disks have a second, unobstructed hole in the opposite corner that identifies them as being of that capacity.

In IBM-compatible PCs, the three densities of 3½-inch floppy disks are backwards-compatible; higher-density drives can read, write and format lower-density media. It is also possible to format a disk at a lower density than that for which it was intended, but only if the disk is first thoroughly demagnetized with a bulk eraser, as the high-density format is magnetically stronger and will prevent the disk from working in lower-density modes.

Writing at different densities than those at which disks were intended, sometimes by altering or drilling holes, was possible but not supported by manufacturers. A hole on one side of a 3½-inch disk can be altered as to make some disk drives and operating systems treat the disk as one of higher or lower density, for bidirectional compatibility or economical reasons.[clarification needed][37][38] Some computers, such as the PS/2 and Acorn Archimedes, ignored these holes altogether.[39]

Other sizes

Other smaller floppy sizes were proposed, especially for portable or pocket-sized devices that needed a smaller storage device.

  • 3¼-inch floppies otherwise similar to 5¼-inch floppies were proposed by Tabor and Dysan.
  • Three-inch disks similar in construction to 3½-inch were manufactured and used for a time, particularly by Amstrad computers and word processors.
  • A two-inch nominal size known as the Video Floppy was introduced by Sony for use with its Mavica still video camera.[40]
  • An incompatible two-inch floppy produced by Fujifilm called the LT-1 was used in the Zenith Minisport portable computer.[41]

None of these sizes achieved much market success.[42]

Sizes, performance and capacity

Floppy disk size is often referred to in inches, even in countries using metric and though the size is defined in metric. The ANSI specification of 3½-inch disks is entitled in part "90 mm (3.5-inch)" though 90 mm is closer to 3.54 inches.[43] Formatted capacities are generally set in terms of kilobytes and megabytes.

Historical sequence of floppy disk formats
In quantities of bits (b) or bytes (B) the prefixes:
k = 1,000 and K = 1,024
M has varying amounts.
Disk format Year introduced Formatted storage capacity Marketed capacity
8-inch: IBM 23FD (read-only) 1971 81.664 kB[44] not marketed commercially
8-inch: Memorex 650 1972 175 kB[45] 1.5 megabit full track[45]
8-inch: SS SD

IBM 33FD / Shugart 901

1973 242.844 kB[44] 3.1 megabit unformatted
8-inch: DS SD

IBM 43FD / Shugart 850

1976 568.320 kB[44] 6.2 megabit unformatted
5¼-inch (35 track) Shugart SA 400 1976[46] 87.5 KB[47] 110 kB
8-inch DS DD

IBM 53FD / Shugart 850

1977 962–1,184 KB depending upon sector size 1.2 MB
5¼-inch DD 1978 360 or 800 KB 360 KB
5¼-inch Apple Disk II (Pre-DOS 3.3) 1978 113.75 KB (256 byte sectors, 13 sectors/track, 35 tracks) 113 KB
5¼-inch Atari DOS 2.0S 1979 90 KB (128 byte sectors, 18 sectors/track, 40 tracks) 90 KB
5¼-inch Commodore DOS 1.0 (SSDD) 1979[48] 172.5 KB[49] 170 KB
5¼-inch Commodore DOS 2.1 (SSDD) 1980[50] 170.75 KB[49] 170 KB
5¼-inch Apple Disk II (DOS 3.3) 1980 140 KB (256 byte sectors, 16 sectors/track, 35 tracks) 140 KB
5¼-inch Apple Disk II (Roland Gustafsson's RWTS18) 1988 157.5 KB (768 byte sectors, 6 sectors/track, 35 tracks) Game publishers privately contracted 3rd party custom DOS.
5¼-inch Victor 9000 / ACT Sirius 1 (SSDD) 1982[51] 612 KB (512 byte sectors, 11-19 variable sectors / track, 80 tracks) 600 KB
5¼-inch Victor 9000 / ACT Sirius 1 (DSDD) 1982[51] 1,196 KB (512 byte sectors, 11-19 variable sectors / track, 80 tracks) 1,200 KB
3½-inch HP SS 1982 280 KB (256 byte sectors, 16 sectors/track, 70 tracks) 264 KB
5¼-inch Atari DOS 3 1983 127 KB (128 byte sectors, 26 sectors/track, 40 tracks) 130 KB
3-inch 1982[52][53] ? 125 KB (SS/SD),

500 KB (DS/DD)[53]

3½-inch SS DD (at release) 1983 360 KB (400 KB on Macintosh) 500 KB
3½-inch DS DD 1983 720 KB (800 KB on Macintosh and RISC OS,[54] 880 KB on Amiga) 1 MB
5¼-inch QD 1980[55] 720 KB 720 KB
5¼-inch RX50 (SSQD) c. 1982 400 KB
5¼-inch HD 1982[56] 1,200 KB 1.2 MB
3-inch Mitsumi Quick Disk 1985 128 to 256 KB ?
3-inch Famicom Disk System (derived from Quick Disk) 1986 112 KB 128 KB[57]
2-inch 1989 720 KB[58] ?
2½-inch Sharp CE-1600F,[59] CE-140F (chassis: FDU-250, medium: CE-1650F)[60] 1986[59][60][61] turnable diskette with 62,464 bytes per side (512 byte sectors, 8 sectors/track, 16 tracks, GCR (4/5) recording)[59][60] 2× 64 KB (128 KB)[59][60]
5¼-inch[62] Perpendicular 1986[61] 100 KB per inch[61] ?
3½-inch HD 1986[63] 1,440 KB (512 bytes sectors, 18 sectors/track, 160 tracks); 1,760 KB on Amiga 1.44 MB (2.0 MB unformatted)
3½-inch HD 1987 1,600 KB on RISC OS[54] 1.6 MB
3½-inch ED 1987[64] 2,880 KB (3,200 KB on Sinclair QL) 2.88 MB
3½-inch Floptical (LS) 1991 20,385 KB 21 MB
3½-inch SuperDisk (LS-120) 1996 120,375 KB 120 MB
3½-inch SuperDisk (LS-240) 1997 240,750 KB 240 MB
3½-inch HiFD 1998/99 ? 150/200 MB
Abbreviations: SD = Single Density; DD = Double Density; QD = Quad Density; HD = High Density; ED = Extra-high Density;[65][66][67][68][69]LS = Laser Servo; HiFD = High capacity Floppy Disk; SS = Single Sided; DS = Double Sided
Formatted storage capacity is total size of all sectors on the disk:

Marketed capacity is the capacity, typically unformatted, by the original media OEM vendor or in the case of IBM media, the first OEM thereafter. Other formats may get more or less capacity from the same drives and disks.

The USB stick under the two boxes of about 80 floppy disks is capable of holding over 130 times as much data as the two boxes of disks put together.

Data is generally written to floppy disks in sectors (angular blocks) and tracks (concentric rings at a constant radius). For example, the HD format of 3½-inch floppy disks uses 512 bytes per sector, 18 sectors per track, 80 tracks per side and two sides, for a total of 1,474,560 bytes per disk.[70][failed verification] Some disk controllers can vary these parameters at the user's request, increasing storage on the disk, although they may not be able to be read on machines with other controllers. For example, Microsoft applications were often distributed on 3½-inch 1.68 MB DMF disks formatted with 21 sectors instead of 18; they could still be recognized by a standard controller. On the IBM PC, MSX and most other microcomputer platforms, disks were written using a constant angular velocity (CAV) format,[64] with the disk spinning at a constant speed and the sectors holding the same amount of information on each track regardless of radial location.

Because the sectors have constant angular size, the 512 bytes in each sector are compressed more near the disk's center. A more space-efficient technique would be to increase the number of sectors per track toward the outer edge of the disk, from 18 to 30 for instance, thereby keeping nearly constant the amount of physical disk space used for storing each sector; an example is zone bit recording. Apple implemented this in early Macintosh computers by spinning the disk more slowly when the head was at the edge, while maintaining the data rate, allowing 400 KB of storage per side and an extra 80 KB on a double-sided disk.[71] This higher capacity came with a disadvantage: the format used a unique drive mechanism and control circuitry, meaning that Mac disks could not be read on other computers. Apple eventually reverted to constant angular velocity on HD floppy disks with their later machines, still unique to Apple as they supported the older variable-speed formats.

Disk formatting is usually done by a utility program supplied by the computer OS manufacturer; generally, it sets up a file storage directory system on the disk, and initializes its sectors and tracks. Areas of the disk unusable for storage due to flaws can be locked (marked as "bad sectors") so that the operating system does not attempt to use them. This was time-consuming so many environments had quick formatting which skipped the error checking process. When floppy disks were often used, disks pre-formatted for popular computers were sold. The unformatted capacity of a floppy disk does not include the sector and track headings of a formatted disk; the difference in storage between them depends on the drive's application. Floppy disk drive and media manufacturers specify the unformatted capacity (for example, 2 MB for a standard 3½-inch HD floppy). It is implied that this should not be exceeded, since doing so will most likely result in performance problems. DMF was introduced permitting 1.68 MB to fit onto an otherwise standard 3½-inch disk; utilities then appeared allowing disks to be formatted as such.

Mixtures of decimal prefixes and binary sector sizes require care to properly calculate total capacity. Whereas semiconductor memory naturally favors powers of two (size doubles each time an address pin is added to the integrated circuit), the capacity of a disk drive is the product of sector size, sectors per track, tracks per side and sides (which in hard disk drives with multiple platters can be greater than 2). Although other sector sizes have been known in the past, formatted sector sizes are now almost always set to powers of two (256 bytes, 512 bytes, etc.), and, in some cases, disk capacity is calculated as multiples of the sector size rather than only in bytes, leading to a combination of decimal multiples of sectors and binary sector sizes. For example, 1.44 MB 3½-inch HD disks have the "M" prefix peculiar to their context, coming from their capacity of 2,880 512-byte sectors (1,440 KiB), consistent with neither a decimal megabyte nor a binary mebibyte (MiB). Hence, these disks hold 1.47 MB or 1.41 MiB. Usable data capacity is a function of the disk format used, which in turn is determined by the FDD controller and its settings. Differences between such formats can result in capacities ranging from approximately 1,300 to 1,760 KiB (1.80 MB) on a standard 3½-inch high-density floppy (and up to nearly 2 MB with utilities such as 2M/2MGUI). The highest capacity techniques require much tighter matching of drive head geometry between drives, something not always possible and unreliable. For example, the LS-240 drive supports a 32 MB capacity on standard 3½-inch HD disks,[72] but this is a write-once technique, and requires its own drive.

The raw maximum transfer rate of 3½-inch ED floppy drives (2.88 MB) is nominally 1,000 kilobits/s, or approximately 83% that of single-speed CD‑ROM (71% of audio CD). This represents the speed of raw data bits moving under the read head; however, the effective speed is somewhat less due to space used for headers, gaps and other format fields and can be even further reduced by delays to seek between tracks.

See also

Notes

  1. ^ The cost of a hard disk with a controller in the mid 1980s was thousands of dollars, for capacity of 80 MB or less.
  2. ^ "Hyper drive" was an alternative name for 5¼-inch 80-track HD floppy drives with 1.2 MB capacity. The term was used, for example, by Philips Austria for their Philips :YES and Digital Research in conjunction with DOS Plus.

References

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Further reading

  • Weyhrich, Steven (2005). "The Disk II": A detailed essay describing one of the first commercial floppy disk drives (from the Apple II History website).
  • Immers, Richard; Neufeld, Gerald G. (1984). Inside Commodore DOS: The Complete Guide to the 1541 Disk Operating System. Datamost & Reston Publishing Company (Prentice-Hall). ISBN 0-8359-3091-2.
  • Englisch, Lothar; Szczepanowski, Norbert (1984). The Anatomy of the 1541 Disk Drive. Grand Rapids, Michigan, USA, Abacus Software (translated from the original 1983 German edition, Düsseldorf, Data Becker GmbH). ISBN 0-916439-01-1.
  • Hewlett Packard: 9121D/S Disc Memory Operator's Manual; printed 1 September 1982; part number 09121-90000.

External links