Phase-field simulation of martensitic transformation with different conditions in inhomogeneous polycrystals

被引:6
|
作者
Xiang, H. [1 ]
Van Paepegem, W. [2 ]
Kestens, L. A. I. [1 ]
机构
[1] Univ Ghent, Fac Engn & Architecture, Dept Electromech Syst & Met Engn, Tech Lane Ghent Sci Pk Campus,Technol Pk Zwijnaard, B-9052 Ghent, Belgium
[2] Univ Ghent, Fac Engn & Architecture, Dept Mat Text & Chem Engn MaTCh, Tech Lane Ghent Sci Pk Campus,Technol Pk Zwijnaard, B-9052 Ghent, Belgium
关键词
Martensitic transformation; Phase field simulation; Polycrystal; Inhomogeneous elasticity; VARIANT SELECTION; ALPHA PRECIPITATION; TI-6AL-4V ALLOY; GRAIN-BOUNDARY; MODEL; MICROSTRUCTURE; NUCLEATION; DEFORMATION; DISLOCATIONS; MORPHOLOGY;
D O I
10.1016/j.commatsci.2023.112067
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The microstructure evolution of Ti64 has been simulated to investigate the effect of different factors on the martensitic transformation (MT) in an elastically homogeneous system within a single parent grain by many researchers. In the present case the MT in a polycrystalline aggregate is considered taking into consideration the inhomogeneous elasticity of different orientations. In the present work, the phase-field modelling (PFM) is employed to study the microstructure evolution of nucleation and growth in different conditions during MT for Ti-6A1-4 V polycrystalline alloy in two dimensions, including external tension/compression loading, with and without plastic deformation and strain hardening. Results indicate that the grain boundaries are the prior sites for nucleation of martensite plates, and the external loading and plastic deformation can influence the micro-structure to a large degree. It can be concluded that the change of elastic strain and stress in the simulated system, including the applied loading, strain relaxation at grain boundaries and plastic deformation are important features during MT. The martensitic product structure can be predicted with the current poly-crystalline phase field model.
引用
收藏
页数:16
相关论文
共 50 条
  • [21] Phase-field simulation of the coupled evolutions of grain and twin boundaries in nanotwinned polycrystals
    Yuanyuan DA
    Yuyang LU
    Yong NI
    AppliedMathematicsandMechanics(EnglishEdition), 2018, 39 (12) : 1789 - 1804
  • [22] Interface stress evolution of martensitic transformation in MnCu alloys: A phase-field study
    Cui, Shushan
    Wan, Jianfeng
    Zuo, Xunwei
    Chen, Nailu
    Rong, Yonghua
    MATERIALS & DESIGN, 2016, 109 : 88 - 97
  • [23] Phase-field simulation of stress-induced martensitic phase transformations at large strains
    Levin, Vladimir A.
    Levitas, Valery I.
    Zingerman, Konstantin M.
    Freiman, Eugene I.
    INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2013, 50 (19) : 2914 - 2928
  • [24] Phase-field simulation of the elastic effect on the transformation kinetics in precipitation
    Zhang, Yuxiang
    Wang, Jincheng
    Yang, Yujuan
    Yang, Gencang
    Zhou, Yaohe
    MATERIALS TRANSACTIONS, 2008, 49 (01) : 133 - 138
  • [25] Phase-field study of crystallographic texturing in piezoelectric polycrystals
    Wang, Meixin
    Xia, Tian
    Geng, Liwei D.
    JOURNAL OF ADVANCED DIELECTRICS, 2022, 12 (04)
  • [26] Phase-field study of grain growth in porous polycrystals
    Rehn, Veronika
    Hoetzer, Johannes
    Rheinheimer, Wolfgang
    Seiz, Marco
    Serr, Christopher
    Nestler, Britta
    ACTA MATERIALIA, 2019, 174 : 439 - 449
  • [27] Indentation-induced martensitic transformation in SMAs: Insights from phase-field simulations
    Rezaee-Hajidehi, Mohsen
    Tuma, Karel
    Stupkiewicz, Stanislaw
    INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2023, 245
  • [29] Finite element simulation of phase field model for nanoscale martensitic transformation
    Hui She
    Yulan Liu
    Biao Wang
    Decai Ma
    Computational Mechanics, 2013, 52 : 949 - 958
  • [30] Phase field simulation of martensitic-transformation-induced plasticity in steel
    Ahluwalia, Rajeev
    Mikula, Jakub
    Laskowski, Robert
    Quek, Siu Sin
    PHYSICAL REVIEW MATERIALS, 2020, 4 (10)