Numerical simulation of creep fracture with internal time-dependent hyperelastic-Kelvin cohesive bonds

被引:3
|
作者
Wang, Yujie [1 ]
Zhang, Zhennan [1 ]
机构
[1] Shanghai Jiao Tong Univ, Sch Naval Architecture Ocean & Civil Engn, Shanghai 200240, Peoples R China
基金
中国国家自然科学基金;
关键词
Creep; Fracture; Viscoelasticity; Virtual internal bond; Numerical simulation; SUBCRITICAL CRACK-GROWTH; STATIC FATIGUE; MODEL; DAMAGE; ROCK; CONTINUUM; STRESS; MICRO; BEHAVIOR; FAILURE;
D O I
10.1016/j.engfracmech.2019.04.014
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The macro brittle creep is closely related to the fracturing process on the micro scale. The virtual internal bond (VIB) is a microstructure-based continuum modeling method. It considers a solid as a bond network on the micro scale. The macro constitutive relation is directly derived from the micro bond potential, which intrinsically contains the micro fracture mechanisms. In this study, the VIB is firstly extended for modeling viscoelasticity, and then it is applied to creep fracture simulation. To reflect the time-dependence property of creep, a viscous bond is introduced to join a time-dependent hyperelastic bond in parallel to constitute a hybrid hyperelastic-Kelvin bond. Based on the hybrid bond potential, the macro viscohyperelastic constitutive relation is derived. The corresponding relationship between the micro bond parameters and the macro material constants is theoretically calibrated. Through this model, the typical three-stage feature of the brittle creep is well reproduced and the creep fracture is effectively simulated. The simulation results suggest that the fast and unstable fracture growth leads to the tertiary stage of creep. The viscosity mainly affects the deformation rate in the primary and tertiary stage of creep. The constitutive relation of the VIB stems from the 1D micro bond; thus, the rheology model derived from the cluster of rheological elements (e.g., spring, dashpot) is easily incorporated into the VIB framework, avoiding the 1D-to-3D generalization of the rheology law. For both the micro viscosity and fracture mechanisms that are incorporated into the macro constitutive relation, the present VIB can simulate complex creep fractures without a separate fracture criterion. It has great potential to simulate fracture propagation in a more extensive viscohyperelastic material.
引用
收藏
页码:206 / 222
页数:17
相关论文
共 50 条
  • [1] Time-dependent cohesive zone modelling for discrete fracture simulation
    Geissler, Gordon
    Kaliske, Michael
    [J]. ENGINEERING FRACTURE MECHANICS, 2010, 77 (01) : 153 - 169
  • [2] TIME-DEPENDENT FRACTURE AND COHESIVE ZONES
    KNAUSS, WG
    [J]. JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY-TRANSACTIONS OF THE ASME, 1993, 115 (03): : 262 - 267
  • [3] Numerical prediction and experiment on rubber creep and stress relaxation using time-dependent hyperelastic approach
    Luo, Robert Keqi
    Zhou, Xiaolin
    Tang, Jinfeng
    [J]. POLYMER TESTING, 2016, 52 : 246 - 253
  • [4] A time-dependent hyperelastic approach for evaluation on rubber creep and stress relaxation
    Luo, R. K.
    Easthope, M.
    Mortel, W. J.
    [J]. CONSTITUTIVE MODELS FOR RUBBER X, 2017, : 97 - 102
  • [5] Numerical simulation of time-dependent fracture of graded bimaterial metallic interfaces
    Ali P. Gordon
    David L. McDowell
    [J]. International Journal of Fracture, 2004, 126 : 321 - 344
  • [6] Numerical simulation of time-dependent fracture of graded bimaterial metallic interfaces
    Gordon, AP
    Mcdowell, DL
    [J]. INTERNATIONAL JOURNAL OF FRACTURE, 2004, 126 (04) : 321 - 344
  • [7] EFFECT OF TIME-DEPENDENT VOID DENSITY ON CREEP FRACTURE
    WILKINSON, DS
    [J]. JOURNAL OF METALS, 1987, 39 (07): : A10 - A10
  • [8] Numerical simulation of cohesive fracture by the virtual-internal-bond model
    Zhang, P
    Klein, P
    Huang, Y
    Gao, H
    Wu, PD
    [J]. CMES-COMPUTER MODELING IN ENGINEERING & SCIENCES, 2002, 3 (02): : 263 - 277
  • [9] Numerical simulation of crack growth in an isotropic solid with randomized internal cohesive bonds
    Gao, HJ
    Klein, P
    [J]. JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 1998, 46 (02) : 187 - 218
  • [10] Time-dependent creep fracture using singular boundary elements
    Providakis, CP
    Kourtakis, SG
    [J]. COMPUTATIONAL MECHANICS, 2002, 29 (4-5) : 298 - 306