Multi-scale modeling method for polycrystalline materials considering grain boundary misorientation angle

被引:12
|
作者
Zhao, Youle [1 ]
Song, Qinghua [1 ,2 ]
Ji, Hansong [1 ]
Cai, Wentong [1 ]
Liu, Zhanqiang [1 ,2 ]
Cai, Yukui [1 ,2 ]
机构
[1] Shandong Univ, Sch Mech Engn, Key Lab High Efficiency & Clean Mech Manufacture, Minist Educ, Jinan, Peoples R China
[2] Shandong Univ, Natl Demonstrat Ctr Expt Mech Engn Educ, Jinan, Peoples R China
关键词
Multi -scale modeling; Grain boundary misorientation angle; Molecular dynamics; Crystal plasticity; Cohesive zone model; Pseudorandom; MOLECULAR-DYNAMICS; PLASTICITY; FRACTURE; CRYSTALLINE; BEHAVIOR; FAILURE; TENSILE; FIELD;
D O I
10.1016/j.matdes.2022.110998
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Grain boundaries (GBs) are microstructures in polycrystalline materials, which influence the mechanical properties of materials significantly. Simulation is an indispensable means to study GBs due to its high flexibility. However, the existing GB simulation models mostly focus on a single simulation scale, lack the consideration of the grain boundary misorientation angle (GBMA) characteristic and fail to describe the coupled elastic-plastic damage behavior between grains and GBs accurately. To describe the influ-ence mechanism of GB on the mechanical behavior of materials accurately, a GBMA-considered multi -scale modeling method for polycrystalline materials is proposed in this paper. The method is based on molecular dynamics (MD), the crystal plasticity finite element method and the cohesive zone model, which considers the GBMA information at grain and atomic scales comprehensively. Firstly, a GB geomet-ric model containing GBMA characteristic is generated at grain scale through EBSD information. Then the GB cohesive parameters are obtained at the atomic scale by MD simulation. Finally, some experiments are performed for verification, which indicates the high accuracy of the proposed method. Furthermore, three models with the same geometric shape and different grain orientation and GBMA are established to study the influence of GBMA on the mechanical properties of polycrystalline materials.(c) 2022 The Author(s). Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
引用
下载
收藏
页数:14
相关论文
共 50 条
  • [1] On grain boundary misorientation distribution in polycrystalline materials with cubic structure
    Fionova, LK
    Lisovskiy, YA
    FIZIKA METALLOV I METALLOVEDENIE, 1995, 80 (04): : 102 - 109
  • [2] Multi-scale modeling of mechanical behavior of polycrystalline materials
    Kwon, YW
    JOURNAL OF COMPUTER-AIDED MATERIALS DESIGN, 2004, 11 (01): : 43 - 57
  • [3] Misorientation and grain boundary orientation dependent grain boundary response in polycrystalline plasticity
    Yalcinkaya, Tuncay
    Ozdemir, Izzet
    Tandogan, Izzet Tarik
    COMPUTATIONAL MECHANICS, 2021, 67 (03) : 937 - 954
  • [4] Misorientation and grain boundary orientation dependent grain boundary response in polycrystalline plasticity
    Tuncay Yalçinkaya
    İzzet Özdemir
    İzzet Tarik Tandoğan
    Computational Mechanics, 2021, 67 : 937 - 954
  • [5] Influence of a misorientation angle on an energy of the grain boundary
    Weckman, AV
    Dem'yanov, BF
    Starostenkov, AD
    METALLOFIZIKA I NOVEISHIE TEKHNOLOGII, 2002, 24 (02): : 189 - 195
  • [6] Multi-scale modeling strategies in materials science - The quasicontinuum method
    Shenoy, VB
    BULLETIN OF MATERIALS SCIENCE, 2003, 26 (01) : 53 - 62
  • [7] Multi-scale modeling strategies in materials science—The quasicontinuum method
    Vijay B. Shenoy
    Bulletin of Materials Science, 2003, 26 : 53 - 62
  • [8] Multi-scale modeling of nanocrystalline materials
    Chandra, N
    Namilae, S
    SUPERPLASTICITY IN ADVANCED MATERIALS, 2003, 447-4 : 19 - 25
  • [9] THE VARIATION OF GRAIN-BOUNDARY THICKNESS WITH MISORIENTATION ANGLE
    HAGEGE, S
    CARTER, CB
    COSANDEY, F
    SASS, SL
    JOURNAL OF METALS, 1980, 32 (08): : 28 - 28
  • [10] Multi-scale quasistatic damage evolution for polycrystalline materials
    Lipton, Robert
    Stuebner, Michael
    Lua, Yuanjie
    INTERNATIONAL JOURNAL OF ENGINEERING SCIENCE, 2012, 58 : 85 - 94