Effect of Internal Hydrogen on Delayed Cracking of Metastable Low-Nickel Austenitic Stainless Steels

被引:9
|
作者
Papula, Suvi [1 ]
Talonen, Juho [2 ]
Todoshchenko, Olga [1 ]
Hanninen, Hannu [1 ]
机构
[1] Aalto Univ, Sch Engn, Dept Engn Design & Prod, Aalto 00076, Finland
[2] Outokumpu Oyj, Espoo 02201, Finland
基金
芬兰科学院;
关键词
INDUCED ALPHA'-MARTENSITE; STACKING-FAULT ENERGY; ENVIRONMENT EMBRITTLEMENT; RESIDUAL-STRESS; GROWTH; STRAIN; TRANSFORMATION; FRACTURE; COPPER;
D O I
10.1007/s11661-014-2465-0
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Metastable austenitic stainless steels, especially manganese-alloyed low-nickel grades, may be susceptible to delayed cracking after forming processes. Even a few wppm of hydrogen present in austenitic stainless steels as an inevitable impurity is sufficient to cause cracking if high enough fraction of strain-induced alpha'-martensite and high residual tensile stresses are present. The role of internal hydrogen content in delayed cracking of several metastable austenitic stainless steels having different alloying chemistries was investigated by means of Swift cup tests, both in as-supplied state and after annealing at 673 K (400 A degrees C). Hydrogen content of the test materials in each state was analyzed with three different methods: inert gas fusion, thermal analysis, and thermal desorption spectroscopy. Internal hydrogen content in as-supplied state was higher in the studied manganese-alloyed low-nickel grades, which contributed to susceptibility of unstable grades to delayed cracking. Annealing of the stainless steels reduced their hydrogen content by 1 to 3 wppm and markedly lowered the risk of delayed cracking. Limiting drawing ratio was improved from 1.4 to 1.7 in grade 204Cu, from 1.7 to 2.0 in grade 201 and from 1.8 to 2.12 in grade 301. The threshold levels of alpha'-martensite and residual stress for delayed cracking at different hydrogen contents were defined for the test materials.
引用
收藏
页码:5270 / 5279
页数:10
相关论文
共 50 条
  • [31] Complex Hardening of Metastable Stainless Austenitic Steels
    Goikhenberg, Yu N.
    METAL SCIENCE AND HEAT TREATMENT, 2015, 56 (9-10) : 477 - 482
  • [32] PLASTIC BEHAVIOUR OF METASTABLE AUSTENITIC STAINLESS STEELS
    LUDWIGSON, DC
    BERGER, JA
    JOURNAL OF THE IRON AND STEEL INSTITUTE, 1969, 207 : 63 - +
  • [33] Corrosion Properties of a Low-Nickel Austenitic Porous Stainless Steel in Simulated Body Fluids
    Garcia-Cabezon, C.
    Martin-Pedrosa, F.
    Blanco-Val, Y.
    Rodriguez-Mendez, M. L.
    CORROSION, 2018, 74 (06) : 683 - 693
  • [34] BASIC PROPERTIES AND PRODUCTION TECHNOLOGY FOR NICKEL-FREE AND LOW-NICKEL STAINLESS-STEELS
    BABAKOV, AA
    GOLOVANENKO, SA
    STEEL IN THE USSR, 1977, 7 (06): : 349 - 354
  • [35] Internal Reversible Hydrogen Embrittlement of Austenitic Stainless Steels Based on Type 316 at Low Temperatures
    Zhang, Lin
    Imade, Masaaki
    An, Bai
    Wen, Mao
    Iijima, Takashi
    Fukuyama, Seiji
    Yokogawa, Kiyoshi
    TETSU TO HAGANE-JOURNAL OF THE IRON AND STEEL INSTITUTE OF JAPAN, 2013, 99 (04): : 294 - 301
  • [36] Effect of retained austenite on strength and elongation in metastable austenitic stainless steels
    Tomimura, K
    Miyakusu, K
    Hirotsu, S
    TETSU TO HAGANE-JOURNAL OF THE IRON AND STEEL INSTITUTE OF JAPAN, 1997, 83 (05): : 341 - 346
  • [37] Internal Reversible Hydrogen Embrittlement of Austenitic Stainless Steels Based on Type 316 at Low Temperatures
    Zhang, Lin
    Imade, Masaaki
    An, Bai
    Wen, Mao
    Iijima, Takashi
    Fukuyama, Seiji
    Yokogawa, Kiyoshi
    ISIJ INTERNATIONAL, 2012, 52 (02) : 240 - 246
  • [38] Prediction of the formability of metastable low nickel austenitic stainless steel sheets
    Kanni Raj, A.
    Padmanabhan, K.A.
    Journal of Materials Processing Technology, 1999, 94 (02): : 201 - 207
  • [39] ROLE OF HYDROGEN IN STRESS-CORROSION CRACKING OF AUSTENITIC STAINLESS-STEELS
    MEHTA, ML
    BURKE, J
    CORROSION, 1975, 31 (03) : 108 - 110
  • [40] Prediction of the formability of metastable low nickel austenitic stainless steel sheets
    Raj, AK
    Padmanabhan, KA
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 1999, 94 (2-3) : 201 - 207