Gradient-enhanced crystal plasticity coupled with phase-field fracture modeling

Fuente: arXiv
Enregistré dans:
Détails bibliographiques
Auteurs principaux: Auth, Kim Louisa, Brouzoulis, Jim, Ekh, Magnus
Format: Preprint
Publié: 2024
Sujets:
Accès en ligne:
Tags: Ajouter un tag
Pas de tags, Soyez le premier à ajouter un tag!
_version_ 1866910679150100480
author Auth, Kim Louisa
Brouzoulis, Jim
Ekh, Magnus
author_facet Auth, Kim Louisa
Brouzoulis, Jim
Ekh, Magnus
contents This study addresses ductile fracture of single grains in metals by modeling of the formation and propagation of transgranular cracks. A proposed model integrates gradient extended hardening, phase-field modeling for fracture, and crystal plasticity. It is presented in a thermodynamical framework in large deformation kinematics and accounts for damage irreversibility. A micromorphic approach for variationally and thermodynamically consistent damage irreversibility is adopted. The main objective of this work is to analyze the capability of the proposed model to predict transgranular crack propagation. Further, the micromorphic approach for damage irreversibility is evaluated in the context of the presented ductile phase-field model. This is done by analyzing the impact of gradient-enhanced hardening considering micro-free and micro-hard boundary conditions, studying the effect of the micromorphic regularization parameter, evaluating the performance of the model in ratcheting loading and and testing its capability to predict three-dimensional crack propagation. In order to solve the fully coupled global and local equation systems, a staggered solution scheme that extends to the local level is presented.
format Preprint
id arxiv_https___arxiv_org_abs_2402_11605
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Gradient-enhanced crystal plasticity coupled with phase-field fracture modeling
Auth, Kim Louisa
Brouzoulis, Jim
Ekh, Magnus
Numerical Analysis
This study addresses ductile fracture of single grains in metals by modeling of the formation and propagation of transgranular cracks. A proposed model integrates gradient extended hardening, phase-field modeling for fracture, and crystal plasticity. It is presented in a thermodynamical framework in large deformation kinematics and accounts for damage irreversibility. A micromorphic approach for variationally and thermodynamically consistent damage irreversibility is adopted. The main objective of this work is to analyze the capability of the proposed model to predict transgranular crack propagation. Further, the micromorphic approach for damage irreversibility is evaluated in the context of the presented ductile phase-field model. This is done by analyzing the impact of gradient-enhanced hardening considering micro-free and micro-hard boundary conditions, studying the effect of the micromorphic regularization parameter, evaluating the performance of the model in ratcheting loading and and testing its capability to predict three-dimensional crack propagation. In order to solve the fully coupled global and local equation systems, a staggered solution scheme that extends to the local level is presented.
title Gradient-enhanced crystal plasticity coupled with phase-field fracture modeling
topic Numerical Analysis
url https://arxiv.org/abs/2402.11605