Phase and structural transformations in corrosion-resistant steels upon high-pressure torsion and heating

被引:5
|
作者
Dobatkin S.V. [1 ,2 ]
Kanutkina L.M. [2 ]
Rybal'chenko O.V. [1 ]
Komlev V.S. [1 ]
机构
[1] Baikov Institute of Metallurgy and Materials Science, Russian Academy of Sciences, Leninskii pr. 49, Moscow
[2] National University of Science and Technology MISiS, Leninskii pr. 4, Moscow
关键词
Austenite; Martensite; Severe Plastic Deformation; Equal Channel Angular Pressing; RUSSIAN Metallurgy;
D O I
10.1134/S0036029512090029
中图分类号
学科分类号
摘要
High-pressure torsion (HPT) at a pressure of 6 GPa and room temperature is found to form a nanocrystalline structure in corrosion-resistant austenitic 05Kh15N9D2TAMF and 08Kh18N10T steels and a submicrocrystalline structure in corrosion-resistant ferritic 08Kh18T1 steel and armco iron. X-ray diffraction analysis of both austenitic steels reveals the γ → α and γ→ e{open}→ α martensitic transformations during HPT at room temperature. After HPT, the strain hardening in the austenitic and ferritic steels is approximately the same and mainly determined by nano- and submicrocrystalline structures, and the role of alloying and phase composition weakens. The thermal stability of the hardening in the austenitic and ferritic steels is almost the same, ~400°C. As a result of HPT, the austenitic 08Kh18N10T and ferritic 08Kh18T1 steels acquire an axial texture with the predominant 〈211〉γ direction in austenite and the 〈110〉α and 〈311〉α directions in martensite and ferrite, respectively. The axial texture is retained in both steels up to a heating temperature of 750°C. © 2012 Pleiades Publishing, Ltd.
引用
收藏
页码:763 / 771
页数:8
相关论文
共 50 条
  • [31] Real Hydrostatic Pressure in High-Pressure Torsion Measured by Bismuth Phase Transformations and FEM Simulations
    Edalati, Kaveh
    Lee, Dong Jun
    Nagaoka, Takashi
    Arita, Makoto
    Kim, Hyoung Seop
    Horita, Zenji
    Pippan, Reinhard
    MATERIALS TRANSACTIONS, 2016, 57 (04) : 533 - 538
  • [32] Current state of the welding of two-phase corrosion-resistant steels
    K. A. Yushchenko
    A. K. Avdeeva
    Yu. N. Kakhovskii
    Chemical and Petroleum Engineering, 1997, 33 : 595 - 599
  • [33] Recent status of welding two-phase corrosion-resistant steels
    Khim I Neft Mashinostr, 5 (81-83):
  • [34] High-Pressure Structural Transformations of Carbyne
    T. D. Varfolomeeva
    S. V. Popova
    A. G. Lyapin
    V. V. Brazhkin
    R. A. Sadykov
    Inorganic Materials, 2005, 41 : 950 - 954
  • [35] High-pressure structural transformations of carbyne
    Varfolomeeva, TD
    Popova, SV
    Lyapin, AG
    Brazhkin, VV
    Sadykov, RA
    INORGANIC MATERIALS, 2005, 41 (09) : 950 - 954
  • [36] Current state of the welding of two-phase corrosion-resistant steels
    Yushchenko, KA
    Avdeeva, AK
    Kakhovskii, YN
    CHEMICAL AND PETROLEUM ENGINEERING, 1997, 33 (05) : 595 - 599
  • [37] Phase Transformations and Hardening Mechanism of Corrosion-resistant Maraging Steel.
    Pawlak, S.
    Karp, J.
    Prace Instytutu Metalurgii Zelaza im. Stanis awa Staszica, 1980, 32 (02): : 70 - 83
  • [38] Evaluating the high-temperature plasticity of corrosion-resistant steels on the basis of the phase and chemical composition
    Migachev, BA
    RUSSIAN METALLURGY, 1999, (03): : 120 - 127
  • [39] Manufacture of High-Nitrogen Corrosion-Resistant Steel by an Aluminothermic Method in a High-Pressure Nitrogen Atmosphere
    Dorofeev, G. A.
    Karev, V. A.
    Kuzminykh, E. V.
    Lad'yanov, V. I.
    Lubnin, A. N.
    Vaulin, A. S.
    Mokrushina, M. I.
    RUSSIAN METALLURGY, 2013, Izdatel'stvo Nauka (01): : 1 - 10
  • [40] Phase Transformations Induced by High Pressure Torsion
    Straumal, B. B.
    Zavorotnev, Yu. D.
    Metlov, L. S.
    Straumal, P. B.
    Petrenko, A. G.
    Tomashevskaya, E. Yu.
    PHYSICS OF METALS AND METALLOGRAPHY, 2022, 123 (12): : 1208 - 1212