Paraequilibrium Carburization of Duplex and Ferritic Stainless Steels

被引:22
|
作者
Michal, G. M. [1 ]
Gu, X. [1 ]
Jennings, W. D. [1 ]
Kahn, H. [1 ]
Ernst, F. [1 ]
Heuer, A. H. [1 ]
机构
[1] Case Western Reserve Univ, Cleveland, OH 44106 USA
关键词
CR-C SYSTEM; LOW-TEMPERATURE; CARBON; CHROMIUM; THERMODYNAMICS; SOLUBILITY; IRON;
D O I
10.1007/s11661-009-9826-0
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
AISI 301 and E-BRITE stainless steels were subjected to low-temperature (743 K) carburization experiments using a commercial technology developed for carburization of 316 austenitic stainless steels. The AISI 301 steel contained similar to 40 vol pct ferrite before carburization but had a fully austenitic hardened case, similar to 20-mu m thick, and a surface carbon concentration of similar to 8 at. pct after treatment; this "colossal" paraequilibrium carbon supersaturation caused an increase in lattice parameter of similar to 3 pct. The E-BRITE also developed a hardened case, 12- to 18-mu m thick, but underwent a more modest (similar to 0.3 pct) increase in lattice parameter; the surface carbon concentration was similar to 10 at. pct. While the hardened case on the AISI 301 stainless steel appeared to be single-phase austenite, evidence for carbide formation was apparent in X-ray diffractometer (XRD) scans of the E-BRITE. Paraequilibrium phase diagrams were calculated for both AISI 301 and E-BRITE stainless steels using a CALPHAD compound energy-based interstitial solid solution model. In the low-temperature regime of interest, and based upon measured paraequilibrium carbon solubilities, more negative Cr-carbon interaction parameters for austenite than those in the current CALPHAD data base may be appropriate. A sensitivity analysis involving Cr-carbon interaction parameters for ferrite found a strong dependence of carbon solubility on relatively small changes in the magnitude of these parameters.
引用
收藏
页码:1781 / 1790
页数:10
相关论文
共 50 条
  • [21] MICRO HETEROGENEOUS DEFORMATION AND STRAIN LOCALIZATION BEHAVIOR IN AUSTENITIC FERRITIC DUPLEX STAINLESS STEELS
    Chai, G.
    Lillbacka, R.
    Peng, R. L.
    ADVANCES IN HETEROGENEOUS MATERIAL MECHANICS 2011, 2011, : 186 - +
  • [22] STRESS CORROSION CRACKING OF FERRITIC AND DUPLEX STAINLESS STEELS IN 30% NaOH SOLUTION.
    Kowaka, Masamichi
    Kudo, Takeo
    Boshoku gijutsu, 1979, 28 (06): : 336 - 342
  • [23] CORROSION-RESISTANCE OF ADVANCED AUSTENITIC-FERRITIC (DUPLEX) STAINLESS-STEELS
    VORONENKO, BI
    PROTECTION OF METALS, 1994, 30 (04): : 317 - 321
  • [24] Mo and Ag ion implantation in austenitic, ferritic and duplex stainless steels: A comparative study
    Dudognon, J.
    Vayer, M.
    Pineau, A.
    Erre, R.
    SURFACE & COATINGS TECHNOLOGY, 2008, 203 (1-2): : 180 - 185
  • [25] Micro cyclic deformation and strain localization behavior in austenitic ferritic duplex stainless steels
    Chai, G.
    Lillbacka, R.
    ADVANCES IN HETEROGENEOUS MATERIAL MECHANICS 2008, 2008, : 433 - 433
  • [26] Effects of microstructural characteristics on the hydrogen embrittlement characteristics of austenitic, ferritic, and γ-α duplex stainless steels
    Okayasu, Mitsuhiro
    Fujiwara, Takafumi
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2021, 807
  • [27] Advances in Duplex Stainless Steels
    Pezzato, Luca
    Calliari, Irene
    MATERIALS, 2022, 15 (20)
  • [28] Properties of Duplex Stainless Steels
    Aoki, So
    Sakai, Jun'ichi
    Zairyo to Kankyo/ Corrosion Engineering, 2024, 73 (03): : 49 - 53
  • [29] Welding duplex and super duplex stainless steels
    Karlsson, L
    ANTI-CORROSION METHODS AND MATERIALS, 1995, 42 (06) : 30 - 35
  • [30] DUPLEX STAINLESS-STEELS
    MCGURN, JF
    CIM BULLETIN, 1988, 81 (914): : 70 - 70