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{{Short description|Any of various steels that are particularly well-suited to be made into tools and tooling}}
{{More citations needed|date=August 2009}}
{{More citations needed|date=August 2009}}
[[File:Tool steels, data and tables appertaining to electric tool steels (1918) (14597078767).jpg|thumb]]
{{Steels}}
{{Steels}}


'''Tool steel''' refers to a variety of [[carbon steel|carbon]] and [[alloy steel]]s that are particularly well-suited to be made into [[tool]]s. Their suitability comes from their distinctive [[hardness]], resistance to [[Wear#Abrasive wear|abrasion]] and deformation, and their ability to hold a cutting edge at elevated temperatures. As a result, tool steels are suited for use in the shaping of other materials.
'''Tool steel''' is any of various [[carbon steel]]s and [[alloy steel]]s that are particularly well-suited to be made into [[tool]]s and tooling, including [[cutting tool (machining)|cutting tools]], [[die (manufacturing)|dies]], [[hand tool]]s, [[knife|knives]], and others. Their suitability comes from their distinctive [[hardness]], resistance to [[Wear#Abrasive wear|abrasion]] and deformation, and their ability to hold a cutting edge at elevated temperatures. As a result, tool steels are suited for use in the shaping of other materials, as for example in [[cutting]], [[machining]], [[stamping (metalworking)|stamping]], or [[forging]].
With a carbon content between 0.5% and 1.5%, tool steels are manufactured under carefully controlled conditions to produce the required quality. The presence of [[carbide]]s in their matrix plays the dominant role in the qualities of tool steel. The four major alloying elements that form carbides in tool steel are: [[tungsten]], [[chromium]], [[vanadium]] and [[molybdenum]]. The rate of dissolution of the different carbides into the [[austenite]] form of the iron determines the high-temperature performance of steel (slower is better, making for a heat-resistant steel). Proper [[heat treatment]] of these steels is important for adequate performance.<ref name=Verhoeven>{{cite book|last1=Verhoeven|first1=John|title=Steel Metallurgy for the Non-Metallurgist|url=https://books.google.com/books?id=brpx-LtdCLYC&pg=frontcover&d#v=onepage&q&f=false|publisher=ASM International|ISBN=978-0-87170-858-8|accessdate=9 November 2014|pages=159}}.</ref> The [[manganese]] content is often kept low to minimize the possibility of cracking during water [[quenching]].


Tool steels have a carbon content between 0.5% and 1.5%. The presence of [[carbide]]s in their matrix plays the dominant role in the qualities of tool steel. The four major alloying elements that form carbides in tool steel are: [[tungsten]], [[chromium]], [[vanadium]] and [[molybdenum]]. The rate of dissolution of the different carbides into the [[austenite]] form of the iron determines the high-temperature performance of steel (slower is better, making for a heat-resistant steel). Proper [[heat treatment]] of these steels is important for adequate performance.<ref name=Verhoeven>{{cite book|last1=Verhoeven|first1=John|title=Steel Metallurgy for the Non-Metallurgist|year=2007|url=https://books.google.com/books?id=brpx-LtdCLYC&pg=frontcover|publisher=ASM International|isbn=978-0-87170-858-8|access-date=9 November 2014|pages=159}}.</ref> The [[manganese]] content is often kept low to minimize the possibility of cracking during water [[quenching]].
There are six groups of tool steels: water-hardening, cold-work, shock-resistant, high-speed, hot-work, and special purpose. The choice of group to select depends on cost, working temperature, required surface hardness, strength, shock resistance, and toughness requirements.<ref name="Marks'">{{cite book|last=Baumeister, Avallone, Baumeister|title=Marks' Standard Handbook for Mechanical Engineers, 8th ed.|publisher=McGraw Hill|isbn=9780070041233|chapter=6|pages=33, 34}}</ref> The more severe the service condition (higher temperature, abrasiveness, corrosiveness, loading), the higher the alloy content and consequent amount of carbides required for the tool steel.


There are six groups of tool steels: water-hardening, cold-work, shock-resistant, high-speed, hot-work, and special purpose. The choice of group to select depends on cost, working temperature, required surface hardness, strength, shock resistance, and toughness requirements.<ref name="Marks'">{{cite book|last=Baumeister | first=Avallone|title=Marks' Standard Handbook for Mechanical Engineers, 8th ed.|publisher=McGraw Hill|isbn=9780070041233|chapter=6|year=1978|pages=33, 34}}</ref> The more severe the service condition (higher temperature, abrasiveness, corrosiveness, loading), the higher the [[alloy]] content and consequent amount of carbides required for the tool steel.
Tool steels are used for cutting, pressing, extruding, and [[Coining (metalworking)|coining]] of metals and other materials. Their use, such as the production of [[injection molding|injection molds]], is essential, due to their resistance to abrasion, which is an important criterion for a mold that will be used to produce hundreds of thousands of moldings of a product or part.

Tool steels are used for cutting, pressing, extruding, and [[Coining (metalworking)|coining]] of metals and other materials. Their use in tooling is essential; [[injection molding|injection molds]] for example require tool steels for their resistance to abrasion- an important criterion for mold durability which enables hundreds of thousands of moldings operations over its lifetime.


The [[American Iron and Steel Institute|AISI]]-[[Society of Automotive Engineers|SAE]] grades of tool steel is the most common scale used to identify various grades of tool steel. Individual alloys within a grade are given a number; for example: A2, O1, etc.
The [[American Iron and Steel Institute|AISI]]-[[Society of Automotive Engineers|SAE]] grades of tool steel is the most common scale used to identify various grades of tool steel. Individual alloys within a grade are given a number; for example: A2, O1, etc.


== Water-hardening group ==
== Water-hardening group ==
W-group tool steel gets its name from its defining property of having to be water quenched. W-grade steel is essentially high carbon [[plain-carbon steel]]. This group of tool steel is the most commonly used tool steel because of its low cost compared to others. They work well for parts and applications where high temperatures are not encountered; above {{cvt|150|C|F|sigfig=1}} it begins to soften to a noticeable degree. Its [[hardenability]] is low, so W-group tool steels must be subjected to a rapid quenching, requiring the use of water. These steels can attain high hardness (above 66 [[Rockwell scale|Rockwell C]]) and are rather brittle compared to other tool steels. W-steels are still sold, especially for springs, but are much less widely used than they were in the 19th and early 20th centuries. This is partly because W-steels warp and crack much more during quench than oil-quenched or air hardening steels.

W-group tool steel gets its name from its defining property of having to be water quenched. W-grade steel is essentially high carbon [[plain-carbon steel]]. This group of tool steel is the most commonly used tool steel because of its low cost compared to others. They work well for small parts and applications where high temperatures are not encountered; above {{convert|150|C|F|abbr=on}} it begins to soften to a noticeable degree. Its [[hardenability]] is low, so W-group tool steels must be subjected to a rapid quenching, requiring the use of water. These steels can attain high hardness (above [[Rockwell scale|HRC]] 66) and are rather brittle compared to other tool steels. W-steels are still sold, especially for springs, but are much less widely used than they were in the 19th and early 20th centuries. This is partly because W-steels warp and crack much more during quench than oil-quenched or air hardening steels.


The toughness of W-group tool steels is increased by alloying with manganese, silicon and molybdenum. Up to 0.20% of vanadium is used to retain fine grain sizes during heat treating.
The toughness of W-group tool steels is increased by alloying with manganese, silicon and molybdenum. Up to 0.20% of vanadium is used to retain fine grain sizes during heat treating.
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=== Oil-hardening: the O series ===
=== Oil-hardening: the O series ===
This series includes an O1 type, an O2 type, an O6 type and an O7 type. All steels in this group are typically hardened at 800&nbsp;°C, oil quenched, then tempered at <{{hsp}}200&nbsp;°C.<ref>{{Cite web|url=http://www.matweb.com/search/DataSheet.aspx?MatGUID=98412264df644be88a7da49a179d25ad|title=Carpenter O6 Graphitic Tool Steel (AISI O6)|website=www.matweb.com|access-date=2017-11-20}}</ref><ref>{{Cite web|url=http://www.matweb.com/search/DataSheet.aspx?MatGUID=5c585a5e0a33433e824c6fc2c5f4ce89|title=Crucible Steel KETOS® Tool Steel, AISI O1|website=www.matweb.com|access-date=2017-11-20}}</ref><ref>{{Cite web|url=http://www.matweb.com/search/DataSheet.aspx?MatGUID=c76077d96f0a44e1bc961e4150700385|title=AISI Type O2 Oil-hardening Tool Steel, oil quenched at 800°C, tempered at 260°C|website=www.matweb.com|access-date=2017-11-20}}</ref><ref>{{Cite web|url=http://www.matweb.com/search/DataSheet.aspx?MatGUID=81899cda477d4d819de831f0d5686991|title=AISI Type O7 Tool Steel|website=www.matweb.com|access-date=2017-11-20}}</ref><ref>{{Cite web|url=http://www.sousacorp.com/tool-steel-composition.html#oilHardening|title=The Sousa Corp {{!}} Tool Steel Composition|last=www.roberidesigns.com|website=www.sousacorp.com|access-date=2017-11-20}}</ref>
This series includes an O1 type, an O2 type, an O6 type and an O7 type. All steels in this group are typically hardened at {{cvt|800|C|F|sigfig=2}}, oil quenched, then tempered below {{cvt|200|C|F|sigfig=1}}.<ref>{{Cite web|url=http://www.matweb.com/search/DataSheet.aspx?MatGUID=98412264df644be88a7da49a179d25ad|title=Carpenter O6 Graphitic Tool Steel (AISI O6)|website=MatWeb|access-date=2017-11-20 |url-status=live |archive-url=https://archive.today/20240215222048/https://www.matweb.com/search/DataSheet.aspx?MatGUID=98412264df644be88a7da49a179d25ad&ckck=1 |archive-date= 15 February 2024 }}</ref><ref>{{Cite web|url=http://www.matweb.com/search/DataSheet.aspx?MatGUID=5c585a5e0a33433e824c6fc2c5f4ce89|title=Crucible Steel KETOS® Tool Steel, AISI O1|website=MatWeb|access-date=2017-11-20 |url-status=live |archive-url=https://archive.today/20240215222627/https://www.matweb.com/search/DataSheet.aspx?MatGUID=5c585a5e0a33433e824c6fc2c5f4ce89&ckck=1 |archive-date= 15 February 2024 }}</ref><ref>{{Cite web|url=http://www.matweb.com/search/DataSheet.aspx?MatGUID=c76077d96f0a44e1bc961e4150700385|title=AISI Type O2 Oil-hardening Tool Steel, oil quenched at 800°C, tempered at 260°C|website=MatWeb|access-date=2017-11-20 |url-status=live |archive-url=https://archive.today/20240215223124/https://www.matweb.com/search/DataSheet.aspx?MatGUID=c76077d96f0a44e1bc961e4150700385&ckck=1 |archive-date= 15 February 2024 }}</ref><ref>{{Cite web|url=http://www.matweb.com/search/DataSheet.aspx?MatGUID=81899cda477d4d819de831f0d5686991|title=AISI Type O7 Tool Steel|website=MatWeb|access-date=2017-11-20 |url-status=live |archive-url=https://archive.today/20240215223959/https://www.matweb.com/search/DataSheet.aspx?MatGUID=81899cda477d4d819de831f0d5686991&ckck=1 |archive-date= 15 February 2024 }}</ref><ref>{{Cite web|url=http://www.sousacorp.com/tool-steel-composition.html#oilHardening|title= Tool Steel Composition |website=The Sousa Corp |access-date=2017-11-20}}</ref>


{| class="wikitable"
{| class="wikitable"
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| {{visible anchor|O1}}
| {{visible anchor|O1}}
| 0.90% [[carbon|C]], 1.0–1.4% [[manganese|Mn]], 0.50% [[chromium|Cr]], 0.50% [[tungsten|W]], 0.30% [[silicon|Si]], 0.20% [[vanadium|V]]
| 0.90% [[carbon|C]], 1.0–1.4% [[manganese|Mn]], 0.50% [[chromium|Cr]], 0.50% [[tungsten|W]], 0.30% [[silicon|Si]], 0.20% [[vanadium|V]]
| It is a cold work steel used for gauges, cutting tools, woodworking tools and knives. It can be hardened to 66 [[Rockwell scale|HRC]], typically used at Rc61-63. Vanadium is optional. Also sold as Arne,<ref>http://www.uddeholm.com/files/PB_Uddeholm_arne_english.pdf</ref> SKS3, 1.2510 and 100MnCrW4.
| A cold work steel used for gauges, cutting tools, woodworking tools and knives. It can be hardened to 66&nbsp;[[Rockwell scale|Rockwell C (HRC)]], though it is typically used at 61-63&nbsp;HRC. Vanadium is optional. Also sold as Arne,<ref>{{Cite web | url=http://www.uddeholm.com/files/PB_Uddeholm_arne_english.pdf | title=UDDEHOLM ARNE | archive-url=https://web.archive.org/web/20210319230022/http://www.uddeholm.com/files/PB_Uddeholm_arne_english.pdf | archive-date=2021-03-19}}</ref> SKS3, 1.2510 and 100MnCrW4.
|-
|-
|{{visible anchor|O2}}
|{{visible anchor|O2}}
| 0.90% [[carbon|C]], 1.5–2.0% [[manganese|Mn]], 0.30% [[chromium|Cr]], 0.30% [[silicon|Si]], 0.15% [[vanadium|V]]
| 0.90% [[carbon|C]], 1.5–2.0% [[manganese|Mn]], 0.30% [[chromium|Cr]], 0.30% [[silicon|Si]], 0.15% [[vanadium|V]]
| It is a cold work steel used for gauges, cutting tools, woodworking tools and knives. It can be hardened to 66 [[Rockwell scale|HRC]], typically used at Rc61-63. Also sold as 1.2842 and 90MnCrV8.<ref>http://www.ozct.com.tr/iframe/en/pdf/1.2842%2090MnCrV8.pdf</ref>
| A cold work steel used for gauges, cutting tools, woodworking tools and knives. It can be hardened to 66&nbsp;HRC, typically used at 61-63&nbsp;HRC. Also sold as 1.2842 and 90MnCrV8.<ref>{{cite web|url=https://steel-bar.com/1-2842-steel/|archive-url=https://web.archive.org/web/20220904124131/https://steel-bar.com/1-2842-steel/|url-status=usurped|archive-date=September 4, 2022|title=1.2842 / 90MnCrV8 - Tool Steel|website=steel-bar.com|date=16 July 2022 }}</ref>
|-
|-
|{{visible anchor|O6}}
|{{visible anchor|O6}}
| 1.45% [[carbon|C]], 1.0% [[manganese|Mn]], 1.0% [[silicon|Si]], 0.3% [[Molybdenum|Mo]]
| 1.45% [[carbon|C]], 1.0% [[manganese|Mn]], 1.0% [[silicon|Si]], 0.3% [[Molybdenum|Mo]]
| It is a cold work oil-hardening, graphitic tool steel with outstanding resistance to metal-to-metal sliding wear and galling. APPLICATIONS: Thread gauges, master gages, cams, bushings, sleeves, meat granulator plates, arbors, forming rolls, shear blades, punches, dies, bar feed guides <ref>{{cite web|url=https://www.hudsontoolsteel.com/technical-data/steelO6|title=High Speed Steel - Tool Steel - O6 - O6 Technical Data|author=|date=|website=www.hudsontoolsteel.com}}</ref>
| A cold work graphitic steel with outstanding resistance to metal-to-metal sliding wear and galling. Typically used for cams, bushings, sleeves, arbors, forming rolls, shear blades, punches, dies, and guides.<ref>{{cite web|url=https://www.hudsontoolsteel.com/technical-data/steelO6|title=High Speed Steel - Tool Steel - O6 - O6 Technical Data|website=www.hudsontoolsteel.com}}</ref>


|}
|}
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! Grade !! Composition !! Notes
! Grade !! Composition !! Notes
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|-
| {{visible anchor|A2}}<ref>{{Citation | title = AISI A2 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A2&show_prop=all&Page_Title=AISI%20A2 | accessdate = 2010-12-25 | archive-url = https://web.archive.org/web/20120402163651/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A2&show_prop=all&Page_Title=AISI%20A2 | archive-date = 2012-04-02 | url-status = dead | postscript =.}}</ref>
| {{visible anchor|A2}}<ref>{{Citation | title = AISI A2 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A2&show_prop=all&Page_Title=AISI%20A2 | access-date = 2010-12-25 | archive-url = https://web.archive.org/web/20120402163651/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A2&show_prop=all&Page_Title=AISI%20A2 | archive-date = 2012-04-02 | url-status = dead | postscript =.}}</ref>
| 1.0% [[carbon|C]], 1.0% [[manganese|Mn]], 5.0% [[chromium|Cr]], 0.3% [[nickel|Ni]], 1.0% [[molybdenum|Mo]], 0.15–0.50% [[vanadium|V]]
| 1.0% [[carbon|C]], 1.0% [[manganese|Mn]], 5.0% [[chromium|Cr]], 0.3% [[nickel|Ni]], 1.0% [[molybdenum|Mo]], 0.15–0.50% [[vanadium|V]]
| A common general purpose tool steel; it is the most commonly used variety of air-hardening steel. It is commonly used for blanking and forming punches, trimming dies, thread rolling dies, and injection molding dies.<ref name="oberg466"/>
| A common general purpose tool steel; it is the most commonly used variety of air-hardening steel. It is commonly used for blanking and forming punches, trimming dies, thread rolling dies, and injection molding dies.<ref name="oberg466"/>
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| {{visible anchor|A3}}<ref>{{Citation | title = AISI A3 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A3&show_prop=all&Page_Title=AISI%20A3 | accessdate = 2010-12-25 | archive-url = https://web.archive.org/web/20120402164210/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A3&show_prop=all&Page_Title=AISI%20A3 | archive-date = 2012-04-02 | url-status = live | postscript =.}}</ref>
| {{visible anchor|A3}}<ref>{{Citation | title = AISI A3 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A3&show_prop=all&Page_Title=AISI%20A3 | access-date = 2010-12-25 | archive-url = https://web.archive.org/web/20120402164210/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A3&show_prop=all&Page_Title=AISI%20A3 | archive-date = 2012-04-02 | url-status = live | postscript =.}}</ref>
| 1.25% C, 0.5% Mn, 5.0% Cr, 0.3% Ni, 0.9–1.4% Mo, 0.8–1.4% V
| 1.25% C, 0.5% Mn, 5.0% Cr, 0.3% Ni, 0.9–1.4% Mo, 0.8–1.4% V
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| {{visible anchor|A4}}<ref>{{Citation | title = AISI A4 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A4&show_prop=all&Page_Title=AISI%20A4 | accessdate = 2010-12-25 | archive-url = https://web.archive.org/web/20120402163716/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A4&show_prop=all&Page_Title=AISI%20A4 | archive-date = 2012-04-02 | url-status = dead | postscript =.}}</ref>
| {{visible anchor|A4}}<ref>{{Citation | title = AISI A4 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A4&show_prop=all&Page_Title=AISI%20A4 | access-date = 2010-12-25 | archive-url = https://web.archive.org/web/20120402163716/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A4&show_prop=all&Page_Title=AISI%20A4 | archive-date = 2012-04-02 | url-status = dead | postscript =.}}</ref>
| 1.0% C, 2.0% Mn, 1.0% Cr, 0.3% Ni, 0.9–1.4% Mo
| 1.0% C, 2.0% Mn, 1.0% Cr, 0.3% Ni, 0.9–1.4% Mo
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| {{visible anchor|A6}}<ref>{{Citation | title = AISI A6 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A6&show_prop=all&Page_Title=AISI%20A6 | accessdate = 2010-12-25 | archive-url = https://web.archive.org/web/20110819031609/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A6&show_prop=all&Page_Title=AISI%20A6 | archive-date = 2011-08-19 | url-status = dead | postscript =.}}</ref>
| {{visible anchor|A6}}<ref>{{Citation | title = AISI A6 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A6&show_prop=all&Page_Title=AISI%20A6 | access-date = 2010-12-25 | archive-url = https://web.archive.org/web/20110819031609/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A6&show_prop=all&Page_Title=AISI%20A6 | archive-date = 2011-08-19 | url-status = dead | postscript =.}}</ref>
| 0.7% C, 1.8–2.5% Mn, 0.9–1.2% Cr, 0.3% Ni, 0.9–1.4% Mo
| 0.7% C, 1.8–2.5% Mn, 0.9–1.2% Cr, 0.3% Ni, 0.9–1.4% Mo
| This type of tool steel air-hardens at a relatively low temperature (approximately the same temperature as oil-hardening types) and is dimensionally stable. Therefore, it is commonly used for dies, forming tools, and gauges that do not require extreme wear resistance but do need high stability.<ref name="oberg466"/>
| This type of tool steel air-hardens at a relatively low temperature (approximately the same temperature as oil-hardening types) and is dimensionally stable. Therefore, it is commonly used for dies, forming tools, and gauges that do not require extreme wear resistance but do need high stability.<ref name="oberg466"/>
|-
|-
| {{visible anchor|A7}}<ref>{{Citation | title = AISI A7 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A7&show_prop=all&Page_Title=AISI%20A7 | accessdate = 2010-12-25 | archive-url = https://web.archive.org/web/20110916003348/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A7&show_prop=all&Page_Title=AISI%20A7 | archive-date = 2011-09-16 | url-status = dead | postscript =.}}</ref>
| {{visible anchor|A7}}<ref>{{Citation | title = AISI A7 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A7&show_prop=all&Page_Title=AISI%20A7 | access-date = 2010-12-25 | archive-url = https://web.archive.org/web/20110916003348/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A7&show_prop=all&Page_Title=AISI%20A7 | archive-date = 2011-09-16 | url-status = dead | postscript =.}}</ref>
| 2.00–2.85% C, 0.8% Mn, 5.00–5.75% Cr, 0.3% Ni, 0.9–1.4% Mo, 3.9–5.15% V, 0.5–1.5 [[Tungsten|W]]
| 2.00–2.85% C, 0.8% Mn, 5.00–5.75% Cr, 0.3% Ni, 0.9–1.4% Mo, 3.9–5.15% V, 0.5–1.5 [[Tungsten|W]]
|
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| {{visible anchor|A8}}<ref>{{Citation | title = AISI A8 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A8&show_prop=all&Page_Title=AISI%20A8 | accessdate = 2010-12-25 | archive-url = https://web.archive.org/web/20110909075436/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A8&show_prop=all&Page_Title=AISI%20A8 | archive-date = 2011-09-09 | url-status = dead | postscript =.}}</ref>
| {{visible anchor|A8}}<ref>{{Citation | title = AISI A8 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A8&show_prop=all&Page_Title=AISI%20A8 | access-date = 2010-12-25 | archive-url = https://web.archive.org/web/20110909075436/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A8&show_prop=all&Page_Title=AISI%20A8 | archive-date = 2011-09-09 | url-status = dead | postscript =.}}</ref>
| 0.5–0.6% C, 0.5% Mn, 4.75–5.50% Cr, 0.3% Ni, 1.15–1.65% Mo, 1.0–1.5 W
| 0.5–0.6% C, 0.5% Mn, 4.75–5.50% Cr, 0.3% Ni, 1.15–1.65% Mo, 1.0–1.5 W
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|-
|-
| {{visible anchor|A9}}<ref>{{Citation | title = AISI A9 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A9&show_prop=all&Page_Title=AISI%20A9 | accessdate = 2010-12-25 | archive-url = https://web.archive.org/web/20120402164105/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A9&show_prop=all&Page_Title=AISI%20A9 | archive-date = 2012-04-02 | url-status = dead | postscript =.}}</ref>
| {{visible anchor|A9}}<ref>{{Citation | title = AISI A9 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A9&show_prop=all&Page_Title=AISI%20A9 | access-date = 2010-12-25 | archive-url = https://web.archive.org/web/20120402164105/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A9&show_prop=all&Page_Title=AISI%20A9 | archive-date = 2012-04-02 | url-status = dead | postscript =.}}</ref>
| 0.5% C, 0.5% Mn, 0.95–1.15% [[silicon|Si]], 4.75–5.00% Cr, 1.25–1.75% Ni, 1.3–1.8% Mo, 0.8–1.4% V
| 0.5% C, 0.5% Mn, 0.95–1.15% [[silicon|Si]], 4.75–5.00% Cr, 1.25–1.75% Ni, 1.3–1.8% Mo, 0.8–1.4% V
|
|
|-
|-
| {{visible anchor|A10}}<ref>{{Citation | title = AISI A10 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A10&show_prop=all&Page_Title=AISI%20A10 | accessdate = 2010-12-25 | archive-url = https://web.archive.org/web/20120402164140/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A10&show_prop=all&Page_Title=AISI%20A10 | archive-date = 2012-04-02 | url-status = dead | postscript =.}}</ref>
| {{visible anchor|A10}}<ref>{{Citation | title = AISI A10 | publisher = Efunda | url = http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A10&show_prop=all&Page_Title=AISI%20A10 | access-date = 2010-12-25 | archive-url = https://web.archive.org/web/20120402164140/http://www.efunda.com/materials/alloys/tool_steels/show_tool.cfm?ID=AISI_A10&show_prop=all&Page_Title=AISI%20A10 | archive-date = 2012-04-02 | url-status = dead | postscript =.}}</ref>
| 1.25–1.50% C, 1.6–2.1% Mn, 1.0–1.5% Si, 1.55–2.05% Ni, 1.25–1.75% Mo
| 1.25–1.50% C, 1.6–2.1% Mn, 1.0–1.5% Si, 1.55–2.05% Ni, 1.25–1.75% Mo
| This grade contains a uniform distribution of [[graphite]] particles to increase machinability and provide self-lubricating properties. It is commonly used for gauges, arbors, shears, and punches.<ref>{{Citation | title = A-10 Tool Steel Material Information | url = http://www.windsorsteel.com/grades/A-10.htm | accessdate = 2010-12-25 | archive-url = https://web.archive.org/web/20040404034651/http://www.windsorsteel.com/grades/A-10.htm | archive-date = 2004-04-04 | url-status = dead | postscript =.}}</ref>
| This grade contains a uniform distribution of [[graphite]] particles to increase machinability and provide self-lubricating properties. It is commonly used for gauges, arbors, shears, and punches.<ref>{{Citation | title = A-10 Tool Steel Material Information | url = http://www.windsorsteel.com/grades/A-10.htm | access-date = 2010-12-25 | archive-url = https://web.archive.org/web/20040404034651/http://www.windsorsteel.com/grades/A-10.htm | archive-date = 2004-04-04 | url-status = dead | postscript =.}}</ref>
|}
|}


=== High carbon-chromium: the D series ===
=== High carbon-chromium: the D series ===


The D series of the cold-work class of tool steels, which originally included types D2, D3, D6, and D7, contains between 10% and 13% chromium (which is unusually high). These steels retain their hardness up to a temperature of {{convert|425|C|F|abbr=on}}. Common applications for these tool steels include forging dies, die-casting die blocks, and drawing dies. Due to their high chromium content, certain D-type tool steels are often considered [[Stainless steel|stainless]] or semi-stainless, however their corrosion resistance is very limited due to the precipitation of the majority of their chromium and carbon constituents as carbides.
The D series of the cold-work class of tool steels, which originally included types D2, D3, D6, and D7, contains between 10% and 13% chromium (which is unusually high). These steels retain their hardness up to a temperature of {{cvt|425|C|F|sigfig=1}}. Common applications for these tool steels include forging dies, die-casting die blocks, and drawing dies. Due to their high chromium content, certain D-type tool steels are often considered [[Stainless steel|stainless]] or semi-stainless, however their corrosion resistance is very limited due to the precipitation of the majority of their chromium and carbon constituents as carbides.


{| class="wikitable"
{| class="wikitable"
Line 103: Line 105:
| D2 is very wear resistant but not as tough as lower alloyed steels. The mechanical properties of D2 are very sensitive to heat treatment. It is widely used for the production of shear blades, planer blades and industrial cutting tools; sometimes used for knife blades.
| D2 is very wear resistant but not as tough as lower alloyed steels. The mechanical properties of D2 are very sensitive to heat treatment. It is widely used for the production of shear blades, planer blades and industrial cutting tools; sometimes used for knife blades.
|}
|}

=== 1.2767 type ===

ISO 1.2767, also known as DIN X 45 NiCrMo 4, AISI 6F7, and [[British Standards|BS]] EN 20 B, is an air-hardening tool steel with a primary alloying element of nickel. It possesses good toughness, stable grains, and is highly polishable. It is primarily used for dies in plastic injection molding application that involve high stresses. Other applications include [[Blanking (metalworking)|blanking]] dies, [[forging]] dies, and industrial blades.<ref>{{Citation | title = Plastic Mould Steel / Cold Working Steel | url = http://www.buderus-steel.com/edelstahl/files/2767_ISO_B%281%29.pdf | accessdate = 2010-11-27 | archive-url = https://web.archive.org/web/20061112103643/http://www.buderus-steel.com/edelstahl/files/2767_ISO_B(1).pdf | archive-date = 2006-11-12 | url-status = live | postscript =.}}</ref>


== Shock-resisting group ==
== Shock-resisting group ==
{{main|Shock resisting steel}}
{{main|Shock-resisting steel}}
The high shock resistance and good hardenability are provided by chromium-tungsten, silicon-molybdenum, silicon-manganese alloying. Shock-resisting group tool steels (S) are designed to resist shock at both low and high temperatures. A low carbon content is required for the necessary toughness (approximately 0.5% carbon). Carbide-forming alloys provide the necessary abrasion resistance, hardenability, and hot-work characteristics. This family of steels displays very high impact toughness and relatively low abrasion resistance and can attain relatively high hardness ([[Rockwell scale|HRC]] 58/60). In the US, toughness usually derives from 1 to 2% silicon and 0.5–1% molybdenum content. In Europe, shock steels often contain {{nobr|0.5–0.6%}} carbon and around 3% nickel. A range of 1.75% to 2.75% nickel is still used in some shock resisting and high strength low alloy steels (HSLA), such as L6, 4340, and Swedish saw steel, but it is relatively expensive. An example of its use is in the production of [[jackhammer]] bits.
The high shock resistance and good hardenability are provided by chromium-tungsten, silicon-molybdenum, silicon-manganese alloying. Shock-resisting group tool steels (S) are designed to resist shock at both low and high temperatures. A low carbon content is required for the necessary toughness (approximately 0.5% carbon). Carbide-forming alloys provide the necessary abrasion resistance, hardenability, and hot-work characteristics. This family of steels displays very high impact toughness and relatively low abrasion resistance and can attain relatively high hardness of 58 to 60&nbsp;HRC. In the US, toughness usually derives from 1 to 2% silicon and 0.5–1% molybdenum content. In Europe, shock steels often contain {{nobr|0.5–0.6%}} carbon and around 3% nickel. A range of 1.75% to 2.75% nickel is still used in some shock-resisting and high-strength low-alloy steels (HSLA), such as L6, 4340, and Swedish saw steel, but it is relatively expensive. An example of its use is in the production of [[jackhammer]] bits.


== High-speed group ==
== High-speed group ==
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{| class="wikitable"
{| class="wikitable"
|+ AISI-SAE tool steel grades<ref>{{harvnb|Oberg|Jones|McCauley|Heald|2004|p=452}}.</ref>
|+ AISI-SAE tool [[steel grades]]<ref>{{harvnb|Oberg|Jones|McCauley|Heald|2004|p=452}}.</ref>
|-
|-
! Defining property !! AISI-SAE grade !! Significant characteristics
! Defining property !! AISI-SAE grade !! Significant characteristics
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| Hot-working
| Hot-working
| H
| H
| H1–H19: chromium base<br/>H20–H39: tungsten base<br/>H40–H59: molybdenum base
| H1–H19: chromium base<br />H20–H39: tungsten base<br />H40–H59: molybdenum base
|-
|-
| Plastic mold
| Plastic mold
Line 180: Line 178:
* [[Silver steel]]
* [[Silver steel]]


== References ==
== Citations ==

{{Reflist}}
{{Reflist}}


== General and cited references ==
== Bibliography ==
* {{Citation | last1 = Degarmo | first1 = E. Paul | last2 = Black | first2 = J T. | last3 = Kohser | first3 = Ronald A. | title = Materials and Processes in Manufacturing | publisher = Wiley | year = 2003 | edition = 9th | isbn = 0-471-65653-4}}.

* {{Citation | last = Degarmo | first = E. Paul | last2 = Black | first2 = J T. | last3 = Kohser | first3 = Ronald A. | title = Materials and Processes in Manufacturing | publisher = Wiley | year = 2003 | edition = 9th | isbn = 0-471-65653-4}}.
* {{citation | last1 = Oberg | first1 = Erik | last2 = Jones | first2 = Franklin D. | last3 = McCauley | first3 = Christopher J. | last4 = Heald | first4 = Ricardo M. | title = [[Machinery's Handbook]] | edition = 27th | year = 2004 | publisher = [[Industrial Press]] | isbn = 978-0-8311-2700-8 | postscript =.}}
* {{citation | last = Oberg | first = Erik | last2 = Jones | first2 = Franklin D. | last3 = McCauley | first3 = Christopher J. | last4 = Heald | first4 = Ricardo M. | title = [[Machinery's Handbook]] | edition = 27th | year = 2004 | publisher = [[Industrial Press]] | isbn = 978-0-8311-2700-8 | postscript =.}}


== External links ==
== External links ==

* Software to compare different tool steel grades based on their properties: [http://www.steel-guide.eu Steel-guide EU based on A.I.S.I. norm] and [http://www.steel-guide.co.uk Steel-guide GB based on British Steel norm].
* Software to compare different tool steel grades based on their properties: [http://www.steel-guide.eu Steel-guide EU based on A.I.S.I. norm] and [http://www.steel-guide.co.uk Steel-guide GB based on British Steel norm].
* [https://web.archive.org/web/20061121035638/http://www.pvsteel.com/docs/Tsb-093.pdf Suggested tool steel selections for various purposes]
* [https://web.archive.org/web/20061121035638/http://www.pvsteel.com/docs/Tsb-093.pdf Suggested tool steel selections for various purposes]
* [http://nbindustrialsupply.com/products/1-tool-steel.html Tool Steel ]
* [http://stainlessandaluminium.co.uk/tool-steel-comparison-of-foreign-standards/ Comparison of tool steel standards]
* [http://stainlessandaluminium.co.uk/tool-steel-comparison-of-foreign-standards/ Comparison of tool steel standards]
* [http://www.sousacorp.com/ts-comp.htm Tool Steel Chemical Composition]
* [http://www.sousacorp.com/ts-comp.htm Tool Steel Chemical Composition] {{Webarchive|url=https://web.archive.org/web/20091128003806/http://www.sousacorp.com/ts-comp.htm |date=2009-11-28 }}


{{Authority control}}
{{Authority control}}
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[[Category:Steels]]
[[Category:Steels]]
[[Category:Metalworking]]
[[Category:Metalworking]]

[[nl:Snelstaal]]

Latest revision as of 15:01, 23 September 2024

Tool steel is any of various carbon steels and alloy steels that are particularly well-suited to be made into tools and tooling, including cutting tools, dies, hand tools, knives, and others. Their suitability comes from their distinctive hardness, resistance to abrasion and deformation, and their ability to hold a cutting edge at elevated temperatures. As a result, tool steels are suited for use in the shaping of other materials, as for example in cutting, machining, stamping, or forging.

Tool steels have a carbon content between 0.5% and 1.5%. The presence of carbides in their matrix plays the dominant role in the qualities of tool steel. The four major alloying elements that form carbides in tool steel are: tungsten, chromium, vanadium and molybdenum. The rate of dissolution of the different carbides into the austenite form of the iron determines the high-temperature performance of steel (slower is better, making for a heat-resistant steel). Proper heat treatment of these steels is important for adequate performance.[1] The manganese content is often kept low to minimize the possibility of cracking during water quenching.

There are six groups of tool steels: water-hardening, cold-work, shock-resistant, high-speed, hot-work, and special purpose. The choice of group to select depends on cost, working temperature, required surface hardness, strength, shock resistance, and toughness requirements.[2] The more severe the service condition (higher temperature, abrasiveness, corrosiveness, loading), the higher the alloy content and consequent amount of carbides required for the tool steel.

Tool steels are used for cutting, pressing, extruding, and coining of metals and other materials. Their use in tooling is essential; injection molds for example require tool steels for their resistance to abrasion- an important criterion for mold durability which enables hundreds of thousands of moldings operations over its lifetime.

The AISI-SAE grades of tool steel is the most common scale used to identify various grades of tool steel. Individual alloys within a grade are given a number; for example: A2, O1, etc.

Water-hardening group

[edit]

W-group tool steel gets its name from its defining property of having to be water quenched. W-grade steel is essentially high carbon plain-carbon steel. This group of tool steel is the most commonly used tool steel because of its low cost compared to others. They work well for parts and applications where high temperatures are not encountered; above 150 °C (300 °F) it begins to soften to a noticeable degree. Its hardenability is low, so W-group tool steels must be subjected to a rapid quenching, requiring the use of water. These steels can attain high hardness (above 66 Rockwell C) and are rather brittle compared to other tool steels. W-steels are still sold, especially for springs, but are much less widely used than they were in the 19th and early 20th centuries. This is partly because W-steels warp and crack much more during quench than oil-quenched or air hardening steels.

The toughness of W-group tool steels is increased by alloying with manganese, silicon and molybdenum. Up to 0.20% of vanadium is used to retain fine grain sizes during heat treating.

Typical applications for various carbon compositions are for W-steels:

  • 0.60–0.75% carbon: machine parts, chisels, setscrews; properties include medium hardness with good toughness and shock resistance.
  • 0.76–0.90% carbon: forging dies, hammers, and sledges.
  • 0.91–1.10% carbon: general purpose tooling applications that require a good balance of wear resistance and toughness, such as rasps, drills, cutters, and shear blades.
  • 1.11–1.30% carbon: files, small drills, lathe tools, razor blades, and other light-duty applications where more wear resistance is required without great toughness. Steel of about 0.8% C gets as hard as steel with more carbon, but the free iron carbide particles in 1% or 1.25% carbon steel make it hold an edge better. However, the fine edge probably rusts off faster than it wears off, if it is used to cut acidic or salty materials.

Cold-work group

[edit]

The cold-work tool steels include the O series (oil-hardening), the A series (air-hardening), and the D series (high carbon-chromium). These are steels used to cut or form materials that are at low temperatures. This group possesses high hardenability and wear resistance, and average toughness and heat softening resistance. They are used in production of larger parts or parts that require minimal distortion during hardening. The use of oil quenching and air-hardening helps reduce distortion, avoiding the higher stresses caused by the quicker water quenching. More alloying elements are used in these steels, as compared to the water-hardening class. These alloys increase the steels' hardenability, and thus require a less severe quenching process and as a result are less likely to crack. They have high surface hardness and are often used to make knife blades. The machinability of the oil hardening grades is high but for the high carbon-chromium types is low.

Oil-hardening: the O series

[edit]

This series includes an O1 type, an O2 type, an O6 type and an O7 type. All steels in this group are typically hardened at 800 °C (1,500 °F), oil quenched, then tempered below 200 °C (400 °F).[3][4][5][6][7]

Grade Composition Notes
O1 0.90% C, 1.0–1.4% Mn, 0.50% Cr, 0.50% W, 0.30% Si, 0.20% V A cold work steel used for gauges, cutting tools, woodworking tools and knives. It can be hardened to 66 Rockwell C (HRC), though it is typically used at 61-63 HRC. Vanadium is optional. Also sold as Arne,[8] SKS3, 1.2510 and 100MnCrW4.
O2 0.90% C, 1.5–2.0% Mn, 0.30% Cr, 0.30% Si, 0.15% V A cold work steel used for gauges, cutting tools, woodworking tools and knives. It can be hardened to 66 HRC, typically used at 61-63 HRC. Also sold as 1.2842 and 90MnCrV8.[9]
O6 1.45% C, 1.0% Mn, 1.0% Si, 0.3% Mo A cold work graphitic steel with outstanding resistance to metal-to-metal sliding wear and galling. Typically used for cams, bushings, sleeves, arbors, forming rolls, shear blades, punches, dies, and guides.[10]

Air-hardening: the A series

[edit]

The first air-hardening-grade tool steel was mushet steel, which was known as air-hardening steel at the time.

Modern air-hardening steels are characterized by low distortion during heat treatment because of their high-chromium content. Their machinability is good and they have a balance of wear resistance and toughness (i.e. between the D and shock-resistant grades).[11]

Grade Composition Notes
A2[12] 1.0% C, 1.0% Mn, 5.0% Cr, 0.3% Ni, 1.0% Mo, 0.15–0.50% V A common general purpose tool steel; it is the most commonly used variety of air-hardening steel. It is commonly used for blanking and forming punches, trimming dies, thread rolling dies, and injection molding dies.[11]
A3[13] 1.25% C, 0.5% Mn, 5.0% Cr, 0.3% Ni, 0.9–1.4% Mo, 0.8–1.4% V
A4[14] 1.0% C, 2.0% Mn, 1.0% Cr, 0.3% Ni, 0.9–1.4% Mo
A6[15] 0.7% C, 1.8–2.5% Mn, 0.9–1.2% Cr, 0.3% Ni, 0.9–1.4% Mo This type of tool steel air-hardens at a relatively low temperature (approximately the same temperature as oil-hardening types) and is dimensionally stable. Therefore, it is commonly used for dies, forming tools, and gauges that do not require extreme wear resistance but do need high stability.[11]
A7[16] 2.00–2.85% C, 0.8% Mn, 5.00–5.75% Cr, 0.3% Ni, 0.9–1.4% Mo, 3.9–5.15% V, 0.5–1.5 W
A8[17] 0.5–0.6% C, 0.5% Mn, 4.75–5.50% Cr, 0.3% Ni, 1.15–1.65% Mo, 1.0–1.5 W
A9[18] 0.5% C, 0.5% Mn, 0.95–1.15% Si, 4.75–5.00% Cr, 1.25–1.75% Ni, 1.3–1.8% Mo, 0.8–1.4% V
A10[19] 1.25–1.50% C, 1.6–2.1% Mn, 1.0–1.5% Si, 1.55–2.05% Ni, 1.25–1.75% Mo This grade contains a uniform distribution of graphite particles to increase machinability and provide self-lubricating properties. It is commonly used for gauges, arbors, shears, and punches.[20]

High carbon-chromium: the D series

[edit]

The D series of the cold-work class of tool steels, which originally included types D2, D3, D6, and D7, contains between 10% and 13% chromium (which is unusually high). These steels retain their hardness up to a temperature of 425 °C (800 °F). Common applications for these tool steels include forging dies, die-casting die blocks, and drawing dies. Due to their high chromium content, certain D-type tool steels are often considered stainless or semi-stainless, however their corrosion resistance is very limited due to the precipitation of the majority of their chromium and carbon constituents as carbides.

Grade Composition Notes
D2 1.5% C, 11.0–13.0% Cr; additionally 0.45% Mn, 0.030% P, 0.030% S, 1.0% V, 0.9% Mo, 0.30% Si D2 is very wear resistant but not as tough as lower alloyed steels. The mechanical properties of D2 are very sensitive to heat treatment. It is widely used for the production of shear blades, planer blades and industrial cutting tools; sometimes used for knife blades.

Shock-resisting group

[edit]

The high shock resistance and good hardenability are provided by chromium-tungsten, silicon-molybdenum, silicon-manganese alloying. Shock-resisting group tool steels (S) are designed to resist shock at both low and high temperatures. A low carbon content is required for the necessary toughness (approximately 0.5% carbon). Carbide-forming alloys provide the necessary abrasion resistance, hardenability, and hot-work characteristics. This family of steels displays very high impact toughness and relatively low abrasion resistance and can attain relatively high hardness of 58 to 60 HRC. In the US, toughness usually derives from 1 to 2% silicon and 0.5–1% molybdenum content. In Europe, shock steels often contain 0.5–0.6% carbon and around 3% nickel. A range of 1.75% to 2.75% nickel is still used in some shock-resisting and high-strength low-alloy steels (HSLA), such as L6, 4340, and Swedish saw steel, but it is relatively expensive. An example of its use is in the production of jackhammer bits.

High-speed group

[edit]

Hot-working group

[edit]

Hot-working steels are a group of steel used to cut or shape material at high temperatures. H-group tool steels were developed for strength and hardness during prolonged exposure to elevated temperatures. These tool steels are low carbon and moderate to high alloy that provide good hot hardness and toughness and fair wear resistance due to a substantial amount of carbide.[1] H1 to H19 are based on a chromium content of 5%; H20 to H39 are based on a tungsten content of 9-18% and a chromium content of 3–4%; H40 to H59 are molybdenum based.

Examples include DIN 1.2344 tool steel (H13).

Special-purpose group

[edit]
  • P-type tool steel is short for plastic mold steels. They are designed to meet the requirements of zinc die casting and plastic injection molding dies.
  • L-type tool steel is short for low alloy special purpose tool steel. L6 is extremely tough.
  • F-type tool steel is water hardened and substantially more wear resistant than W-type tool steel.

Comparison

[edit]
AISI-SAE tool steel grades[21]
Defining property AISI-SAE grade Significant characteristics
Water-hardening W
Cold-working O Oil-hardening
A Air-hardening; medium alloy
D High carbon; high chromium
Shock resisting S
High speed T Tungsten base
M Molybdenum base
Hot-working H H1–H19: chromium base
H20–H39: tungsten base
H40–H59: molybdenum base
Plastic mold P
Special purpose L Low alloy
F Carbon tungsten

See also

[edit]

Citations

[edit]
  1. ^ a b Verhoeven, John (2007). Steel Metallurgy for the Non-Metallurgist. ASM International. p. 159. ISBN 978-0-87170-858-8. Retrieved 9 November 2014..
  2. ^ Baumeister, Avallone (1978). "6". Marks' Standard Handbook for Mechanical Engineers, 8th ed. McGraw Hill. pp. 33, 34. ISBN 9780070041233.
  3. ^ "Carpenter O6 Graphitic Tool Steel (AISI O6)". MatWeb. Archived from the original on 15 February 2024. Retrieved 2017-11-20.
  4. ^ "Crucible Steel KETOS® Tool Steel, AISI O1". MatWeb. Archived from the original on 15 February 2024. Retrieved 2017-11-20.
  5. ^ "AISI Type O2 Oil-hardening Tool Steel, oil quenched at 800°C, tempered at 260°C". MatWeb. Archived from the original on 15 February 2024. Retrieved 2017-11-20.
  6. ^ "AISI Type O7 Tool Steel". MatWeb. Archived from the original on 15 February 2024. Retrieved 2017-11-20.
  7. ^ "Tool Steel Composition". The Sousa Corp. Retrieved 2017-11-20.
  8. ^ "UDDEHOLM ARNE" (PDF). Archived from the original (PDF) on 2021-03-19.
  9. ^ "1.2842 / 90MnCrV8 - Tool Steel". steel-bar.com. 16 July 2022. Archived from the original on September 4, 2022.{{cite web}}: CS1 maint: unfit URL (link)
  10. ^ "High Speed Steel - Tool Steel - O6 - O6 Technical Data". www.hudsontoolsteel.com.
  11. ^ a b c Oberg et al. 2004, pp. 466–467.
  12. ^ AISI A2, Efunda, archived from the original on 2012-04-02, retrieved 2010-12-25.
  13. ^ AISI A3, Efunda, archived from the original on 2012-04-02, retrieved 2010-12-25.
  14. ^ AISI A4, Efunda, archived from the original on 2012-04-02, retrieved 2010-12-25.
  15. ^ AISI A6, Efunda, archived from the original on 2011-08-19, retrieved 2010-12-25.
  16. ^ AISI A7, Efunda, archived from the original on 2011-09-16, retrieved 2010-12-25.
  17. ^ AISI A8, Efunda, archived from the original on 2011-09-09, retrieved 2010-12-25.
  18. ^ AISI A9, Efunda, archived from the original on 2012-04-02, retrieved 2010-12-25.
  19. ^ AISI A10, Efunda, archived from the original on 2012-04-02, retrieved 2010-12-25.
  20. ^ A-10 Tool Steel Material Information, archived from the original on 2004-04-04, retrieved 2010-12-25.
  21. ^ Oberg et al. 2004, p. 452.

General and cited references

[edit]
[edit]