Thermodynamically-consistent derivation and computation of twinning and fracture in brittle materials by means of phase-field approaches in the finite element method

被引:16
|
作者
Amirian, Benhour [1 ]
Jafarzadeh, Hossein [2 ,3 ]
Abali, Bilen Emek [4 ]
Reali, Alessandro [2 ]
Hogan, James David [1 ]
机构
[1] Univ Alberta, Dept Mech Engn, Edmonton, AB T6G 2R3, Canada
[2] Univ Pavia, Dept Civil Engn & Architecture, I-27100 Pavia, Italy
[3] Ruhr Univ Bochum, Interdisciplinary Ctr Adv Mat Simulat ICAMS, D-44801 Bochum, Germany
[4] Uppsala Univ, Dept Mat Sci & Engn, S-75121 Uppsala, Sweden
基金
加拿大自然科学与工程研究理事会;
关键词
Anisotropic brittle materials; Finite element method; Fracture mechanics; Phase-field method; Twinning; CRYSTAL PLASTICITY; CRACK-PROPAGATION; ELASTIC-CONSTANTS; VARIATIONAL APPROACH; GRADIENT DAMAGE; STRAIN-ENERGY; MODEL; DEFORMATION; TRANSFORMATIONS; SIMULATION;
D O I
10.1016/j.ijsolstr.2022.111789
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
A theoretical-computational framework is proposed for predicting the failure behavior of two anisotropic brittle materials, namely, single crystal magnesium and boron carbide. Constitutive equations are derived, in both small and large deformations, by using thermodynamics in order to establish a fully coupled and transient twin and crack system. To study the common deformation mechanisms (e.g., twinning and fracture), which can be caused by extreme mechanical loading, a monolithically-solved Ginzburg-Landau-based phase-field theory coupled with the mechanical equilibrium equation is implemented in a finite element simulation framework for the following problems: (i) twin evolution in two-dimensional single crystal magnesium and boron carbide under simple shear deformation; (ii) crack-induced twinning for magnesium under pure mode I and mode II loading; and (iii) study of fracture in homogeneous single crystal boron carbide under biaxial compressive loading. The results are verified by a steady-state phase-field approach and validated by available experimental data in the literature. The success of this computational method relies on using two distinct phase-field (order) parameters related to fracture and twinning. A finite element method-based code is developed within the Python-based open-source platform FEniCS. We make the code publicly available and the developed algorithm may be extended for the study of phase transformations under dynamic loading or thermally-activated mechanisms, where the competition between various deformation mechanisms is accounted for within the current comprehensive modeling approach.
引用
收藏
页数:20
相关论文
共 50 条
  • [41] Adaptive analysis for phase-field model of brittle fracture of functionally graded materials
    Shao, Yulong
    Duan, Qinglin
    Qiu, Shasha
    ENGINEERING FRACTURE MECHANICS, 2021, 251
  • [42] Fourth-order phase-field modeling for brittle fracture in piezoelectric materials
    Yu TAN
    Fan PENG
    Chang LIU
    Daiming PENG
    Xiangyu LI
    Applied Mathematics and Mechanics(English Edition), 2024, 45 (05) : 837 - 856
  • [43] Fourth-order phase-field modeling for brittle fracture in piezoelectric materials
    Tan, Yu
    Peng, Fan
    Liu, Chang
    Peng, Daiming
    Li, Xiangyu
    APPLIED MATHEMATICS AND MECHANICS-ENGLISH EDITION, 2024, 45 (05) : 837 - 856
  • [44] A phase-field modeling method for the mixed-mode fracture of brittle materials based on spectral decomposition
    Wang, Feiyang
    Shao, Jianfu
    Huang, Hongwei
    ENGINEERING FRACTURE MECHANICS, 2021, 242
  • [45] A thermodynamically consistent phase-field regularized cohesive fracture model with strain gradient elasticity and surface stresses
    Zhou, Qianqian
    Wei, Yueguang
    Zhou, Yichun
    Yang, Li
    ENGINEERING FRACTURE MECHANICS, 2022, 273
  • [46] Phase-field model for brittle fracture based on the inner-element edge-based smoothed finite method (IES-FEM)
    Xu, Zhimin
    Xie, Wei
    ENGINEERING FRACTURE MECHANICS, 2021, 254
  • [47] Phase-field modeling of anisotropic brittle fracture in rock-like materials and polycrystalline materials
    Nguyen-Thanh, Nhon
    Nguyen-Xuan, Hung
    Li, Weidong
    Computers and Structures, 2024, 296
  • [48] Phase-field modeling of anisotropic brittle fracture in rock-like materials and polycrystalline materials
    Nguyen-Thanh, Nhon
    Nguyen-Xuan, Hung
    Li, Weidong
    COMPUTERS & STRUCTURES, 2024, 296
  • [49] Phase-field modeling of brittle fracture with multi-level hp-FEM and the finite cell method
    S. Nagaraja
    M. Elhaddad
    M. Ambati
    S. Kollmannsberger
    L. De Lorenzis
    E. Rank
    Computational Mechanics, 2019, 63 : 1283 - 1300
  • [50] Phase-field modeling of brittle fracture with multi-level hp-FEM and the finite cell method
    Nagaraja, S.
    Elhaddad, M.
    Ambati, M.
    Kollmannsberger, S.
    De Lorenzis, L.
    Rank, E.
    COMPUTATIONAL MECHANICS, 2019, 63 (06) : 1283 - 1300