A unified phase-field model of fracture in viscoelastic materials

被引:1
作者
Franz Dammaß
Marreddy Ambati
Markus Kästner
机构
[1] TU Dresden,Chair of Computational and Experimental Solid Mechanics
来源
Continuum Mechanics and Thermodynamics | 2021年 / 33卷
关键词
Phase-field; Fracture; Inelastic material; Viscoelasticity; Dissipation;
D O I
暂无
中图分类号
学科分类号
摘要
The phase-field approach has proven to be a powerful tool for the prediction of crack phenomena. When it is applied to inelastic materials, it is crucial to adequately account for the coupling between dissipative mechanisms present in the bulk and fracture. In this contribution, we propose a unified phase-field model for fracture of viscoelastic materials. The formulation is characterized by the pseudo-energy functional which consists of free energy and dissipation due to fracture. The free energy includes a contribution which is related to viscous dissipation that plays an essential role in coupling the phase-field and the viscous internal variables. The governing equations for the phase-field and the viscous internal variables are deduced in a consistent thermodynamic manner from the pseudo-energy functional. The resulting model establishes a two-way coupling between crack phase-field and relaxation mechanisms, i.e. viscous internal variables explicitly enter the evolution of phase-field and vice versa. Depending on the specific choice of the model parameters, it has flexibility in capturing the possible coupled responses, and the approaches of recently published formulations are obtained as limiting cases. By means of a numerical study of monotonically increasing load, creep and relaxation phenomena, rate-dependency of failure in viscoelastic materials is analysed and modelling assumptions of the present formulation are discussed.
引用
收藏
页码:1907 / 1929
页数:22
相关论文
共 149 条
[21]  
Miehe C(2020)An efficient phase-field model for fatigue fracture in ductile materials Eng. Fract. Mech. 214 575-undefined
[22]  
Hofacker M(2014)Gradient damage models coupled with plasticity and nucleation of cohesive cracks Arch. Ration. Mech. Anal. 80 351-undefined
[23]  
Welschinger F(2015)Gradient damage models coupled with plasticity: variational formulation and main properties Mech. Mater. 312 95-undefined
[24]  
Kuhn C(2016)A discussion of fracture mechanisms in heterogeneous materials by means of configurational forces in a phase field fracture model Comput. Methods Appl. Mech. Eng. 84 1-undefined
[25]  
Müller R(2016)Phase field modeling of ductile fracture at finite strains: a variational gradient-extended plasticity-damage theory Int. J. Plast 312 130-undefined
[26]  
Amor H(2016)A phase-field formulation for fracture in ductile materials: finite deformation balance law derivation, plastic degradation, and stress triaxiality effects Comput. Methods Appl. Mech. Eng. 346 862-undefined
[27]  
Marigo JJ(2019)Fracture of viscoelastic solids modeled with a modified phase field method Comput. Methods Appl. Mech. Eng. 127 266-undefined
[28]  
Maurini C(2019)Rate-dependent phase-field damage modeling of rubber and its experimental parameter identification J. Mech. Phys. Solids 142 103282-undefined
[29]  
Weinberg K(2020)Fatigue phase-field damage modeling of rubber using viscous dissipation: crack nucleation and propagation Mech. Mater. 39 3903-undefined
[30]  
Hesch C(1996)On large strain viscoelasticity: continuum formulation and finite element applications to elastomeric structures Int. J. Numer. Methods Eng. 13 781-undefined