Modelling of hydrogen-assisted damage at the deforming single crystal crack-tip

被引:13
作者
Kumar, Rakesh [1 ]
Mahajan, Dhiraj K. [1 ]
机构
[1] Indian Inst Technol Ropar, Dept Mech Engn, Ropar Mech Mat Lab, Rupnagar 140001, Punjab, India
关键词
Crack-tip; Crystal plasticity; Hydrogen embrittlement; HELP; HEDE; DISCRETE DISLOCATION PLASTICITY; GRAIN-BOUNDARIES; LATTICE-DEFECTS; STRAIN-RATE; EMBRITTLEMENT; NICKEL; DEFORMATION; TRANSPORT; DIFFUSION; NUCLEATION;
D O I
10.1016/j.mechmat.2023.104557
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A coupled framework of dislocation density-based crystal plasticity model and slip-rate based hydrogen transport model is developed to simulate hydrogen-assisted damage at the deforming crack-tip. Chemical potential-based boundary conditions and mobile dislocation-assisted hydrogen transport account for the evolving hydrogen concentration. A novel fracture indicator parameter is proposed to quantify the damage that considers the combined effect of local hydrogen concentration, accumulated plastic slip and stress triaxiality. Experimentally-informed critical value for hydrogen concentration is considered to model the crack initiation. Depending on the crystal orientation, the damage is shown to be associated either with an individual hydrogen embrittlement mechanism (hydrogen-enhanced localized plasticity, and hydrogen-enhanced decohesion) or their synergistic effect at the crack tip.
引用
收藏
页数:15
相关论文
共 50 条
  • [31] Random hydrogen-assisted fatigue crack growth in steel plates
    Holobut, P.
    PROBABILISTIC ENGINEERING MECHANICS, 2011, 26 (01) : 61 - 66
  • [32] Cohesive zone based axisymmetric modelling of hydrogen-assisted cracking in a circumferentially notched tensile specimen
    Singh, Dhiraj Kumar
    Maiti, S. K.
    Bhandakkar, Tanmay K.
    Raman, R. K. Singh
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (27) : 12530 - 12542
  • [33] Suppression of Hydrogen-Assisted Fatigue Crack Growth in Carbon Steels
    Takeuchi, Etsuo
    Hayakawa, Masao
    Matsuoka, Saburo
    JOURNAL OF THE JAPAN INSTITUTE OF METALS, 2012, 76 (12) : 647 - 652
  • [34] The effect of phase transformation in the plastic zone on the hydrogen-assisted fatigue crack growth of 301 stainless steel
    Chen, T. C.
    Chen, S. T.
    Kai, W.
    Tsay, L. W.
    MATERIALS CHARACTERIZATION, 2016, 112 : 134 - 141
  • [35] Probabilistic failure criteria for individual microstructural elements: an application to hydrogen-assisted crack initiation in alloy 725
    Seita, M.
    Hanson, J. P.
    Gradecak, S.
    Demkowicz, M. J.
    JOURNAL OF MATERIALS SCIENCE, 2017, 52 (05) : 2763 - 2779
  • [36] Interaction of hydrogen with crack-tip plasticity: effects of constraint on void growth
    Liang, Y
    Sofronis, P
    Dodds, RH
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2004, 366 (02): : 397 - 411
  • [37] Modelling of hydrogen distribution at the fatigue crack tip of austenitic stainless steels in internal and external hydrogen tests
    Zhang, Ruiming
    Lu, Chen
    Ma, Kai
    Peng, Wenzhu
    Zheng, Jinyang
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 54 : 780 - 790
  • [38] Suppression of Hydrogen-Assisted Fatigue Crack Growth in Carbon Steels
    Takeuchi, Etsuo
    Hayakawa, Masao
    Matsuoka, Saburo
    MATERIALS TRANSACTIONS, 2013, 54 (12) : 2285 - 2290
  • [39] Fatigue crack-growth retardation after overloading in gaseous hydrogen: Revisiting the effect of hydrogen on crack-tip plastic-zone development
    Ogawa, Yuhei
    Iwata, Keiichiro
    Okazaki, Saburo
    Nakamura, Masami
    Matsubara, Kazuki
    Takakuwa, Osamu
    Matsunaga, Hisao
    MATERIALS LETTERS, 2022, 308
  • [40] Influence of Loading Rate on the Hydrogen-Assisted Micro-Damage in Bluntly Notched Samples of Pearlitic Steel
    Toribio, Jesus
    Vergara, Diego
    Lorenzo, Miguel
    METALS, 2016, 6 (01)