A discrete dislocation dynamics model of creeping single crystals

被引:8
|
作者
Rajaguru, M. [1 ]
Keralavarma, S. M. [1 ]
机构
[1] Indian Inst Technol Madras, Dept Aerosp Engn, Madras 600036, Tamil Nadu, India
关键词
discrete dislocation dynamics; kinetic Monte Carlo method; dislocation climb; power-law creep; CLIMB; DEFORMATION; DIFFUSION; BEHAVIOR; FORMULATION; PLASTICITY;
D O I
10.1088/1361-651X/aaa789
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Failure by creep is a design limiting issue for metallic materials used in several high temperature applications. Current theoretical models of creep are phenomenological with little connection to the underlying microscopic mechanisms. In this paper, a bottom-up simulation framework based on the discrete dislocation dynamics method is presented for dislocation creep aided by the diffusion of vacancies, known to be the rate controlling mechanism at high temperature and stress levels. The time evolution of the creep strain and the dislocation microstructure in a periodic unit cell of a nominally infinite single crystal is simulated using the kinetic Monte Carlo method, together with approximate constitutive laws formulated for the rates of thermal activation of dislocations over local pinning obstacles. The deformation of the crystal due to dislocation glide between individual thermal activation events is simulated using a standard dislocation dynamics algorithm, extended to account for constant stress periodic boundary conditions. Steady state creep conditions are obtained in the simulations with the predicted creep rates as a function of stress and temperature in good agreement with experimentally reported values. Arrhenius scaling of the creep rates as a function of temperature and power-law scaling with the applied stress are also reproduced, with the values of the power-law exponents in the high stress regime in good agreement with experiments.
引用
收藏
页数:26
相关论文
共 50 条
  • [1] Discrete dislocation dynamics in crystals
    Ariza, M. P.
    Ramasubramaniam, A.
    Ortiz, M.
    [J]. PROGRESS IN INDUSTRIAL MATHEMATICS AT ECMI 2006, 2008, 12 : 387 - +
  • [2] A discrete dislocation - transformation model for austenitic single crystals
    Shi, J.
    Turteltaub, S.
    Van der Giessen, E.
    Remmers, J. J. C.
    [J]. MODELLING AND SIMULATION IN MATERIALS SCIENCE AND ENGINEERING, 2008, 16 (05)
  • [3] Quantitative dislocation multiplication law for Ge single crystals based on discrete dislocation dynamics simulations
    Gradwohl, Kevin-P.
    Miller, Wolfram
    Dropka, Natasha
    Sumathi, R. Radhakrishnan
    [J]. COMPUTATIONAL MATERIALS SCIENCE, 2022, 211
  • [4] A discrete dislocation model for primary creep in γ/γ′-microstructures of superalloy single crystals
    Probst-Hein, M
    Dlouhy, A
    Eggeler, G
    [J]. MODELLING OF MICROSTRUCTURAL EVOLUTION IN CREEP RESISTANT MATERIALS, 1999, (03): : 247 - 260
  • [5] DISLOCATION DYNAMICS IN NIOBIUM SINGLE CRYSTALS
    EVANS, KR
    SCHWENK, EB
    [J]. ACTA METALLURGICA, 1970, 18 (01): : 1 - &
  • [6] Discrete dislocation dynamics analysis of the effect of lattice orientation on void growth in single crystals
    Segurado, Javier
    LLorca, Javier
    [J]. INTERNATIONAL JOURNAL OF PLASTICITY, 2010, 26 (06) : 806 - 819
  • [7] An analysis of the size effect on void growth in single crystals using discrete dislocation dynamics
    Segurado, Javier
    Llorca, Javier
    [J]. ACTA MATERIALIA, 2009, 57 (05) : 1427 - 1436
  • [8] Mechanism of strain hardening of magnesium single-crystals: Discrete dislocation dynamics simulations
    Li, Mao
    Tian, Xiaobao
    Jiang, Wentao
    Wang, Qingyuan
    Fan, Haidong
    [J]. JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2023, 173
  • [9] Discrete dislocation dynamics modelling of microvoid growth and its intrinsic mechanism in single crystals
    Huang, Minsheng
    Li, Zhenhuan
    Wang, Cheng
    [J]. ACTA MATERIALIA, 2007, 55 (04) : 1387 - 1396
  • [10] A discrete mechanics approach to dislocation dynamics in BCC crystals
    Ramasubramaniam, A.
    Ariza, M. P.
    Ortiz, M.
    [J]. JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2007, 55 (03) : 615 - 647