WO2005045082A1 - Acier inoxydable austenitique a teneur elevee en mn, presentant une excellente aptitude au façonnage - Google Patents

Acier inoxydable austenitique a teneur elevee en mn, presentant une excellente aptitude au façonnage Download PDF

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Publication number
WO2005045082A1
WO2005045082A1 PCT/JP2004/016057 JP2004016057W WO2005045082A1 WO 2005045082 A1 WO2005045082 A1 WO 2005045082A1 JP 2004016057 W JP2004016057 W JP 2004016057W WO 2005045082 A1 WO2005045082 A1 WO 2005045082A1
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Prior art keywords
stainless steel
workability
sfe
less
steel
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PCT/JP2004/016057
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English (en)
Japanese (ja)
Inventor
Masaharu Hatano
Eiichiro Ishimaru
Akihiko Takahashi
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Nippon Steel & Sumikin Stainless Steel Corporation
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Priority to KR1020057021573A priority Critical patent/KR101177540B1/ko
Publication of WO2005045082A1 publication Critical patent/WO2005045082A1/fr

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    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/001Ferrous alloys, e.g. steel alloys containing N
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/02Ferrous alloys, e.g. steel alloys containing silicon
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • C22C38/40Ferrous alloys, e.g. steel alloys containing chromium with nickel
    • C22C38/42Ferrous alloys, e.g. steel alloys containing chromium with nickel with copper
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • C22C38/40Ferrous alloys, e.g. steel alloys containing chromium with nickel
    • C22C38/44Ferrous alloys, e.g. steel alloys containing chromium with nickel with molybdenum or tungsten
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C38/00Ferrous alloys, e.g. steel alloys
    • C22C38/18Ferrous alloys, e.g. steel alloys containing chromium
    • C22C38/40Ferrous alloys, e.g. steel alloys containing chromium with nickel
    • C22C38/58Ferrous alloys, e.g. steel alloys containing chromium with nickel with more than 1.5% by weight of manganese

Definitions

  • the austenite of the present invention is soft, has low work hardenability, has excellent workability such as cold working or deep drawing at a high working rate, and maintains non-magnetism even after working.
  • high-Mn stainless steel Related to high-Mn stainless steel. Background art
  • Austenitic stainless steels are classified into 300 series (SUS304, SUS316, SUS301, etc.) and 200 series (SUS201, SUS202, etc.) specified in JIS SG4305.
  • Ni-based austenitic stainless steel represented by SUS304 has good workability and excellent corrosion resistance, but has the disadvantage of high raw material cost because it contains a large amount of expensive Ni. .
  • SUS304 has a problem in that the austenite phase is metastable, so that martensitic transformation occurs during molding, and the processed product becomes magnetic. .,
  • 200 type austenitic stainless steel is a high Mn stainless steel in which Ni is replaced with Mn, and has high strength and non-magnetic properties because it contains a large amount of C and N. It is also less expensive than Ni-based austenitic stainless steel.
  • high-Mn stainless steels such as SUS201 and SUS202, have higher strength and higher work hardenability than the 300 series in the annealed state, and therefore have high press formability such as cold workability and deep drawing. To There is an inferior problem.
  • 200 series austenitic stainless steel containing 5.5% or less of 1 ⁇ and 5.5% or more of Mn is a high-strength steel for electronic equipment, wires for bicycle spokes, nails for construction and construction materials, etc. Mainly applied to members that require non-magnetism. For this reason, many studies have been made on the high Mn stainless steel for further improvement of high strength non-magnetization.
  • Japanese Patent No. 2618151 and Japanese Patent Application Laid-Open No. Hei 6-235048 disclose that high strength and non-magnetization include a small amount of Nb, Mo, and P by suppressing an increase in Mn and Cr in conjunction with increasing N. It is disclosed that the addition works effectively.
  • Japanese Patent Application Laid-Open Nos. 11-92885 and 2000-34546 disclose reducing the impurity elements of Ca, B and S. Is disclosed to be effective. These low-Ni austenitic stainless steels contain a large amount of N exceeding 0.1%, and have high strength (0.2% power resistance) similar to the above-mentioned high-Mn stainless steel, and have problems in workability. is there.
  • Japanese Patent Application Laid-Open No. 2004-143576 and British Patent No. 2359095 disclose a low Ni austenitic stainless steel with a reduced Cr content in order to improve workability in addition to corrosion resistance. It is disclosed and its mechanical properties are relatively close to SUS304.
  • high-Mn stainless steel with a reduced Ni content is not intended to improve workability to be applied to press forming applications where Ni-based stainless steel represented by SUS304 is used.
  • high-Mn stainless steel that has excellent workability equal to or higher than that of SUS304 and realizes non-magnetism even after processing has not yet emerged. Disclosure of the invention
  • the present invention has been devised to improve the workability of the high-Mn stainless steel described above, and includes C + N, an austenitic stability index Md30 value (° C), a stacking fault energy generation index SFE By designing the component so that (mj / m 2 ) satisfies the specified conditions, austenitic stainless steel that has workability equal to or higher than SUS304 and maintains non-magnetism even after processing is obtained.
  • the purpose is to provide.
  • the gist of the present invention is as follows.
  • the high Mn stainless steel of the present invention has a mass of 0 /. C + N: 0.03 to 0.15%, Si: 0.1 to 1%, Mn: 3 to 15%, Cr: 10 to 16%, Ni: 1 to 6%, Cu: 0.3 to 3%, Mo: 0.3 to It consists of 3%, the balance being Fe and unavoidable impurities, and is characterized by its component design so that the austenitic stability index Md30 value and the stacking fault energy generation index SFE satisfy the following.
  • C + N In order to ensure the workability of press forming such as cold working or deep drawing at a high working rate, C + N must be 0.15% by mass or less, the 0.2% proof stress required in the tensile test should be less than 300MPa,
  • the work hardening index n which is the slope of the nominal strain of 25% and 35% in the true stress logarithmic elongation strain curve, is 0.45 or less.
  • the high Mn stainless steel of the present invention has a 0.2% proof stress because it adopts a composition design of C + N: 0.03 to 0.15%, -10 ⁇ Md30 ⁇ 30, 40 and SFE 80. It is soft with less than 300 MPa, has low work hardening properties, has excellent workability such as cold working or deep drawing working at a high working rate, and maintains non-magnetism even after working. Therefore, it is possible to carry out forming work that cannot be performed with conventional high-Mn stainless steel, and it is used for press forming where Ni-based stainless steel represented by SUS304 is used. Further, annealing for demagnetization after processing SUS304 can be omitted, so that it can be applied in a wide range of fields as a material for forming processing requiring nonmagnetic properties.
  • Figure 1 is a graph showing the effect of Md30 on the elongation of steel.
  • Fig. 2 is a graph showing the effect of the Md30 value on the magnetic permeability of a 60% cold-rolled material.
  • Figure 3 is a graph showing the relationship between SFE and work hardening index n.
  • High Mn stainless steel of the present invention C + N, austenite stability index Md30 value C
  • an index SFE of stacking fault energy (mj / m 2) and the adopted child components designed to satisfy the appropriate range As a result, it has workability equal to or higher than that of SUS304, and maintains non-magnetism even after processing.
  • the function and effect of the composition design of the high Mn stainless steel of the present invention and the reason for limiting the same will be described.
  • C and N are effective elements for stabilizing the austenite phase and suppressing the formation of the ⁇ ferrite phase.
  • these elements increase the 0.2% resistance of steel by solid solution strengthening and lower the workability. Therefore, the upper limit of C + N is set to 0.15%.
  • has a large effect of increasing the power resistance by 0.2% compared to C, ⁇ is preferably designed to be lower than C.
  • design C + N to 0.15% or less (high C). Therefore, it is effective to soften the steel 0.2% resistance to less than 300MPa.
  • C + N is less than 0.03%, not only is it difficult to demagnetize the processed product, but it also imposes a burden on steelmaking costs for reducing C and N. Therefore, the lower limit of C + N is set to 0.03%. A preferred range is from 0.08 to 0.12%.
  • Metastable austenitic stainless steel undergoes martensitic transformation by plastic deformation even at temperatures above the Ms point.
  • the maximum temperature at which a transformation point occurs during processing is called the Md value. That is, the Md value is an index indicating the degree of stability of austenite.
  • the temperature at which 50% martensite occurs when 30% strain is applied by tensile deformation is referred to as the Md30 value.
  • Md30 497-462 (C + N)-9.2Si-8.1Mn-13.7Cr-20 (Ni + Cu)-18.5Mo
  • the Md30 value (° C) defined for the high Mn stainless steel of the present invention It has been found that the workability and the non-magnetism aimed at by the present invention are ensured by designing the temperature in the range of 10 ° C to 30 ° C.
  • the Md30 value is lower than -10 ° C, the elongation of the steel material is reduced (by 50%) due to the high austenite stability, and workability is impaired.
  • the Md30 value exceeds 30 ° C, the elongation of the steel material improves due to the formation of the work-induced martensite ( ⁇ 'phase), but the formed ⁇ , phase has magnetism, and the processed product becomes less magnetic. Take on.
  • the Md30 value is -10 to 30 ° C, the high-Mn stainless steel of the present invention can improve the workability of the steel material while maintaining the non-magnetic properties of the processed product.
  • austenitic stainless steel with fee structure has larger work hardening because stacking faults are easily generated.
  • a component design is adopted which allows easy dislocation cross-slip where stacking faults are hardly generated.
  • the present invention aims to provide an excellent object.
  • Workability was developed.
  • high-Mn stainless steel tends to generate stacking faults and has a large work hardening, so that the workability targeted by the present invention cannot be obtained.
  • the work hardening index n value (the slope of nominal strain of 25% and 35% in the true stress logarithmic elongation strain curve) obtained in the tensile test exceeds 0.45.
  • the n value determined by the tensile test is in the range of 0.3 to 0.45.
  • Soft, low work hardening, non-magnetic steel material that satisfies the Md30 value and SFE of the present invention is a non-magnetic steel that is a problem in Ni-based austenitic stainless steels such as SUS304. And excellent in deep drawability over multiple steps without causing cracks.
  • SUS304 the austenite phase is metastable, so that martensite transformation occurs during processing, and the flange portion becomes too hard during deep drawing, and a residual crack increases due to an increase in residual stress.
  • C + N of the present invention 0.03 to 0.15%, Md30 value: —10 to 30.
  • other alloy elements except C and N of the present invention are selected in the following ranges.
  • Si is effective as a deoxidizing agent at the time of smelting, and 0.1% or more is added to obtain the effect. It is more preferably at least 0.3%. Si is an element that promotes work hardening by strengthening solid solution and lowering SFE. Therefore, the upper limit is 1% or less in order to obtain the 0.2% heat resistance of less than 300 MPa and the work hardening index n value of less than 0.45 of the present invention. Preferably it is less than 0.2-0.7%.
  • Mn works effectively with non-magnetic retention and austenite-forming elements as an alternative to Ni.
  • Mn is added in an amount of 3% or more to obtain these effects. More preferably, it is 5% or more.
  • the upper limit is 15%. Preferably it is 10% or less.
  • Cr is an alloying element necessary for obtaining the corrosion resistance required for stainless steel, and is preferably required to be 10% or more. It is more preferably at least 12%.
  • Cr is an element that promotes work hardening by reducing solid solution strengthening and SFE. Therefore, the upper limit is 16% or less in order to obtain the 0.2% heat resistance of less than 300 MPa and the work hardening index n value of less than 0.45 of the present invention. Preferably it is 15% or less.
  • Ni is an expensive element, and more than 6% of 300 series austenitic stainless steel raises the cost of raw materials. Therefore, Ni is less than 6%. It is preferably at most 5%. Ni is an element necessary for austenitic stainless steel and is an effective element for ensuring non-magnetism and ductility after cold working. Therefore, the lower limit is 1%.
  • Cu is an alloy element effective for lowering the Md30 value defined in the present invention and increasing SFE to improve workability.
  • the lower limit of Cu is set to 0.3% or more. Preferably, it is 1% or more.
  • excessive addition of Cu has the problem of inducing Cu contamination and hot embrittlement during steelmaking.
  • the SFE is excessively increased, resulting in deterioration of workability. Therefore, the upper limit of Cu is set to 3% or less.
  • Mo 0.3-3% It is an element effective for improving corrosion resistance. Further, it is an element effective for lowering the Md30 value defined in the present invention and increasing SFE to improve workability. In order to ensure the corrosion resistance and workability of the high Mn stainless steel of the present invention, the lower limit of Mo is set to 0.3% or more. However, when Mo is contained in excess, magnetism is generated by the formation of ⁇ ferrite, and the strength is increased by solid solution strengthening. Therefore, the upper limit of Mo should be 3% or less.
  • Stainless steel having the chemical composition shown in Table 1 was melted and hot-rolled at a heating temperature of 1200 ° C to produce a hot-rolled steel sheet with a thickness of 4.0 mm.
  • Hot-rolled steel sheet is annealed at 1120 ° C and soaking time of 2 minutes, cold-rolled to 1.5mm thickness after pickling, further intermediate-annealed at 1060 ° C and soaking time of 2 minutes, and after pickling
  • a cold-rolled steel sheet with a thickness of 0.7 mm was subjected to final annealing at 1060 ° C and soaking time of 1 minute (annealed pickling material).
  • a 60% cold-rolled material was obtained by cold rolling the intermediate annealed pickled material to a sheet thickness of 0.6 mm.
  • a JIS13B tensile test piece was cut out from the annealed pickling material, and 0.2% power resistance, tensile strength, elongation, and work hardening index n were measured by a tensile test.
  • a ⁇ 96mm disk (blank) is cut out from the annealed pickling material and subjected to a 5-stage deep-drawing test with a punch diameter ⁇ 48 ⁇ ⁇ 44 ⁇ ⁇ 40 ⁇ ⁇ 35 ⁇ 30mm. (Punch diameter) was investigated.
  • a test piece was cut out from a 60% cold-rolled material, and the magnetic permeability was determined by measuring the attractive force due to the magnetization by measuring the slope at a magnetic field of 5000 gauj3 on an applied magnetic field-magnetization curve using a magnetic balance.
  • Table 2 shows the 0.2% heat resistance, tensile strength, elongation, n-value, and magnetic permeability ( ⁇ ) of the 60% cold-rolled material of the annealed pickling material.
  • Steel No .:! To 6 satisfy the component design conditions for high-Mn stainless steel specified in the present invention, and have mechanical properties with a 0.2% proof stress equivalent to 304 less than 300 MPa and an elongation of 50% or more.
  • the work hardening index n was less than 304 with a work hardening index n of 0.3 to 0.45, the work hardening was small, and the magnetic permeability ⁇ of the 60% cold-rolled material was non-magnetic with a magnetic permeability ⁇ of 1.05 or less.
  • this steel did not undergo any cracking due to multi-stage deep drawing, and the cracking limit drawing ratio was much higher than SUS304, which was 3.2 or more.
  • the workability and non-magnetism of the steel material targeted by the present invention cannot be obtained because the amount of C + N, the Md30 value and / or the SFE are out of the conditions specified by the present invention. It is a thing.
  • Steel No. 15 is SUS304 which is a comparison of workability. Steels 16 to 29 do not satisfy the component range specified by the present invention, and the target workability and non-magnetism of the steel material could not be obtained.
  • Figures 1 and 2 show the results of an examination of the effect of the austenitic stability index Md30 on the elongation and permeability of steel. As shown in Fig. 1 and Fig. 2, by controlling to -10 It was confirmed that the target growth of Akira was 50% or more and ⁇ : 1.05 or less.
  • Md30 497-462 (C + N) -9.2Si-8.1 ⁇ -13.7Cr-20 (Ni + Cu)-18.5Mo
  • the high-Mn stainless steel of the present invention can be formed by conventional high-Mn stainless copper, and can be used for press forming applications where Ni-based stainless steel represented by SUS304 is used. . In particular, it is most suitable for multi-step deep drawing applications in which time cracking is a problem with SUS304. Furthermore, annealing for demagnetization after processing of SUS304 can be omitted, so that it can be applied in a wide range of fields as a material for molding that requires nonmagnetism.

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Materials Engineering (AREA)
  • Mechanical Engineering (AREA)
  • Metallurgy (AREA)
  • Organic Chemistry (AREA)
  • Heat Treatment Of Sheet Steel (AREA)
  • Heat Treatment Of Steel (AREA)

Abstract

L'invention concerne un acier inoxydable austénitique à teneur élevée en Mn, possédant une excellente aptitude au façonnage, caractérisée en ce qu'il présente la composition suivante, en % en masse : C + N : 0,03 à 0,15 % ; Si : 0,1 à 1 % ; Mn : 3 à 15 % ; Cr : 10 à 16 % ; Ni : 1 à 6 % ; Cu : 0,3 à 3 % ; Mo : 0,3 à 3 %, et ; pour compléter, du fer (Fe) et des impuretés, qui sont inévitables. Selon l'invention, cette composition chimique est conçue de façon que Md30, qui est un indicateur du degré de stabilité d'austénite, et SFE, qui est un indicateur de la formation d'énergie de défaut d'empilement, satisfassent les formules suivantes : -10<Md30<30, et 40<SFE<80 ; Md30 (°C) : 497-462(C+N)-9,2Si-8,1Mn-13,7Cr-20(Ni+Cu)-18,5Mo ; SFE (mJ/m2) : 6,2Ni+18,6Cu+0,7Cr+3,2Mn+9,3Mo-53. L'acier inoxydable austénitique à teneur élevée en Mn selon l'invention présente une meilleure aptitude au façonnage et conserve une propriété non magnétique après avoir été façonné.
PCT/JP2004/016057 2003-11-07 2004-10-22 Acier inoxydable austenitique a teneur elevee en mn, presentant une excellente aptitude au façonnage WO2005045082A1 (fr)

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JP2003-378635 2003-11-07
JP2003378635 2003-11-07
JP2004218508A JP4498847B2 (ja) 2003-11-07 2004-07-27 加工性に優れたオ−ステナイト系高Mnステンレス鋼
JP2004-218508 2004-07-27

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TW200942628A (en) * 2008-04-08 2009-10-16 Walsin Lihwa Corp Low nickel austenitic stainless steel with low magnetism, corrosion resistance and easy-to-process
JP5444561B2 (ja) 2009-02-27 2014-03-19 日本冶金工業株式会社 高Mnオーステナイト系ステンレス鋼と服飾用金属部品
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US11149324B2 (en) 2015-03-26 2021-10-19 Nippon Steel Stainless Steel Corporation High strength austenitic stainless steel having excellent resistance to hydrogen embrittlement, method for manufacturing the same, and hydrogen equipment used for high-pressure hydrogen gas and liquid hydrogen environment
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KR102491305B1 (ko) * 2020-11-18 2023-01-20 주식회사 포스코 강도가 향상된 비자성 오스테나이트계 스테인리스강 및 그 제조방법

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JP4498847B2 (ja) 2010-07-07
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JP2005154890A (ja) 2005-06-16
KR101177540B1 (ko) 2012-08-28

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