Interstitial diffusion of hydrogen in M7C3 (M=Cr,Mn,Fe)

被引:1
|
作者
Krause, Andreas M. [1 ]
Olsson, Par A. T. [1 ,2 ]
Music, Denis [1 ]
Bjerken, Christina [1 ]
机构
[1] Malmo Univ, Dept Mat Sci & Appl Math, S-21119 Malmo, Sweden
[2] Lund Univ, Div Mech, Box 118, SE-22100 Lund, Sweden
基金
瑞典研究理事会;
关键词
Hydrogen embrittlement; Hydrogen diffusion; Carbides; Density functional theory; Nudged elastic band method; EMBRITTLEMENT; STEELS; BCC; SOLUBILITY; CRYSTALS; METALS; TRAPS;
D O I
10.1016/j.commatsci.2022.111940
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
To increase the understanding of the role of carbide precipitates on the hydrogen embrittlement of martensitic steels, we have performed a density functional theory study on the solution energies and energy barriers for hydrogen diffusion in orthorhombic M7C3 (M = Cr, Mn, Fe). Hydrogen can easily diffuse into the lattice and cause internal stresses or bond weakening, which may promote reduced ductility. Solution energies of hydrogen at different lattice positions have systematically been explored, and the lowest values are-0.28, 0.00, and 0.03 eV/H-atom for Cr7C3, Mn7C3, and Fe7C3, respectively. Energy barriers for the diffusion of hydrogen atoms have been probed with the nudged elastic band method, which shows comparably low barriers for transport via interstitial octahedral sites for all three systems. Analysis of the atomic volume reveals a correlation between low solution energies and energy barriers and atoms with large atomic volumes. Furthermore, it shows that the presence of carbon tends to increase the energy barrier. Our results can explain previous experimental findings of hydrogen located in the bulk of Cr7C3 precipitates and provide a solid basis for future design efforts of steels with high strength and commensurable ductility.
引用
收藏
页数:7
相关论文
共 50 条
  • [31] M7C3: Unveiling the structure of a misunderstood carbide
    不详
    AMERICAN CERAMIC SOCIETY BULLETIN, 2022, 101 (08): : 26 - 27
  • [32] The structural, magnetic, electronic, and mechanical properties of orthogonal/hexagonal M7C3 (M = Fe and Cr) carbides from first-principles calculations
    Zhang, D.
    Hou, T.P.
    Liang, X.
    Zheng, P.
    Zheng, Y.H.
    Lin, H.F.
    Wu, K.M.
    Vacuum, 2022, 203
  • [33] Effects of Y dopant on mechanical properties and electronic structures of M7C3 carbide in Fe-Cr-C hardfacing coating
    Shi, Zhijun
    Shao, Wei
    Rao, Lixiang
    Hu, Tianshi
    Xing, Xiaolei
    Zhou, Yefei
    Liu, Sha
    Yang, Qingxiang
    APPLIED SURFACE SCIENCE, 2021, 538
  • [34] Experimental observation and crystallographic description of M7C3 carbide transformation in Fe-Cr-Ni-C HP type alloy
    Kondrat'ev, Sergey Yu.
    Kraposhin, Valentin S.
    Anastasiadi, Grigoriy P.
    Talis, Alexander L.
    ACTA MATERIALIA, 2015, 100 : 275 - 281
  • [35] The effect of temperature on the evolution of eutectic carbides and M7C3 → M23C6 carbides reaction in the rapidly solidified Fe-Cr-C alloy
    Wieczerzak, K.
    Bala, P.
    Dziurka, R.
    Tokarski, T.
    Cios, G.
    Koziel, T.
    Gondek, L.
    JOURNAL OF ALLOYS AND COMPOUNDS, 2017, 698 : 673 - 684
  • [36] Effect of Ti-doping on peeling resistance of primary M7C3 carbides in hypereutectic Fe-Cr-C hardfacing coating and γ-Fe/M7C93 interfacial bonding strength
    Shao, Wei
    Zhou, Yefei
    Zhou, Lei
    Rao, Lixiang
    Xing, Xiaolei
    Shi, Zhijun
    Yang, Qingxiang
    MATERIALS & DESIGN, 2021, 211
  • [37] COARSENING OF M3C, M7C3, AND M23C6 IN STEELS CONTAINING CHROMIUM AND MOLYBDENUM
    VANNIEKERK, MN
    ARGENT, BB
    JOURNAL OF THE IRON AND STEEL INSTITUTE, 1970, 208 : 781 - +
  • [38] M7C3 TO M23C6 TRANSFORMATION IN CHROMIUM CONTAINING ALLOYS
    BEECH, J
    WARRINGT.DH
    JOURNAL OF THE IRON AND STEEL INSTITUTE, 1966, 204 : 460 - &
  • [39] An Atomistic Structure of Cementite (M3C, M = Fe, Cr, Mn) in Carbon Steel
    Tian, Qianren
    Shen, Wei
    Xu, Xiangyu
    Fu, Jianxun
    PHYSICS OF METALS AND METALLOGRAPHY, 2023, 124 (13): : 1404 - 1413
  • [40] An Atomistic Structure of Cementite (M3C, M = Fe, Cr, Mn) in Carbon Steel
    Qianren Xiangyu Wu
    Wei Tian
    Xiangyu Shen
    Jianxun Xu
    Physics of Metals and Metallography, 2023, 124 : 1404 - 1413