On the α+γ⇆γ-phase boundary in nickel and in manganese containing stainless steel alloys

被引:0
|
作者
Schüle, W [1 ]
机构
[1] Univ Frankfurt, Inst Angew Phys, D-60325 Frankfurt, Germany
关键词
phase diagram; nickel and manganese containing stainless steels; nucleation; alpha-ferrite; alpha '-martensite; dislocations; volume change; brittleness;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The alpha -ferrite-phase in nickel and in manganese containing stainless steel alloys is very brittle. Its formation is connected with a huge decrease in volume, which also causes stresses in the alloys that are very dangerous if the materials cannot accommodate them. The alpha -ferrite-phase is formed in stainless steel alloys only if nucleation sites are provided. alpha ' -martensites are nucleation sites for the formation of alpha -ferrite, even at temperatures at which alpha -ferrite is not stable. If alpha ' -martensite is dissolved during an anneal, no new alpha -ferrite is formed, and the remaining alpha -ferrite transforms back into gamma -austenite. In "pure" nickel or in "pure" manganese containing stainless steel alloys the martensitic temperature is above 100 degreesC and thus alpha ' -martensite is always present at ambient temperature in these materials, giving rise to the formation of alpha -ferrite during a subsequent anneal. It was established in the present work that the gamma <----> gamma+alpha -phase boundary in iron-chromium-nickel alloys is also almost independent of the temperature as in iron-chromium-manganese alloys. Thus the existing phase diagram for nickel containing stainless steels has to be revised. The various elements added to "pure" stainless steel alloys, as we find them in EUR-316L, US-316L, US-PCA, and in AMCR, cause a drastic decrease of the martensitic temperature so that neither alpha ' -martensite nor alpha -ferrite is found in these alloys. However, in all these four alloys alpha -ferrite is formed readily during irradiation with high energy particles and a tentative gamma <----> gamma+alpha -phase boundary, valid during irradiation with high energy particles, is derived. The amount of alpha -ferrite formed during irradiation increases with decreasing irradiation temperature and with decreasing applied stress. The alloys EUR-316L, US-316L, US-PCA, and AMCR do not survive one reactor cycle, if irradiated at 100 degreesC.
引用
收藏
页码:704 / 721
页数:18
相关论文
共 50 条
  • [41] EFFECT OF NICKEL AND MANGANESE ON THE STRUCTURE AND PROPERTIES OF MANGANESE ALLOYS
    METLITSKII, VA
    ADEEVA, LI
    METAL SCIENCE AND HEAT TREATMENT, 1989, 31 (3-4) : 277 - 280
  • [42] Classifying nickel steel and manganese steel.
    Dejean, P
    COMPTES RENDUS HEBDOMADAIRES DES SEANCES DE L ACADEMIE DES SCIENCES, 1917, 165 : 334 - 337
  • [43] Evaluation of oxidation and hydrogen permeation in Al-containing stainless steel alloys
    Adams, TM
    Korinko, P
    Duncan, A
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2006, 424 (1-2): : 33 - 39
  • [44] Evaluation of corrosion performance of two Mn-containing stainless steel alloys
    Toor, Ihsan-ul-Haq
    INTERNATIONAL JOURNAL OF MATERIALS RESEARCH, 2014, 105 (04) : 386 - 391
  • [45] PHASE-TRANSFORMATIONS IN A MANGANESE-ALLOYED AUSTENITIC STAINLESS-STEEL
    JARGELIUSPETTERSSON, RFA
    SCRIPTA METALLURGICA ET MATERIALIA, 1994, 30 (09): : 1233 - 1238
  • [46] Influence of the Interaction of Hydrogen with the Phase Boundary of Duplex Stainless Steel on Corrosion
    Zhang, Houwei
    Zheng, Qing
    Wang, Dengyun
    Liu, Ming
    Li, Gang
    Xu, Lining
    Qiao, Lijie
    CORROSION, 2024, 80 (04) : 417 - 429
  • [47] Gallium-Suboxide Attack of Stainless Steel and Nickel Alloys at 800–1200°C
    D. G. Kolman
    T. N. Taylor
    Y. S. Park
    M. Stan
    D. P. Butt
    C. J. Maggiore
    J. R. Tesmer
    G. J. Havrilla
    Oxidation of Metals, 2001, 55 : 437 - 470
  • [48] AN OXIDE REPLICA TECHNIQUE FOR THE ELECTRON MICROSCOPE EXAMINATION OF STAINLESS STEEL AND HIGH NICKEL ALLOYS
    MAHLA, EM
    NIELSEN, NA
    JOURNAL OF APPLIED PHYSICS, 1948, 19 (04) : 378 - 382
  • [49] The behavior of titanium, stainless steel, and copper-nickel alloys as plasma torch cathodes
    Kwak, JE
    Munz, RJ
    PLASMA CHEMISTRY AND PLASMA PROCESSING, 1996, 16 (04) : 577 - 603
  • [50] Grain refinement of a nickel and manganese free austenitic stainless steel produced by pressurized solution nitriding
    Mohammadzadeh, Roghayeh
    Akbari, Alireza
    MATERIALS CHARACTERIZATION, 2014, 93 : 119 - 128