Numerical homogenisation based on asymptotic theory and model reduction for coupled elastic-viscoplastic damage

Author:

Bhattacharyya Mainak1ORCID,Dureisseix David2,Faverjon Beatrice2

Affiliation:

1. LMT, ENS Paris Saclay, CNRS UMR8535, Université Paris Saclay, Cachan CEDEX, France

2. Univ Lyon, INSA-Lyon, CNRS UMR5259, LaMCoS, Villeurbanne CEDEX, France

Abstract

This article deals with damage computation of heterogeneous structures containing locally periodic micro-structures. Such heterogeneous structure is extremely expensive to simulate using classical finite element methods, as the level of discretisation required to capture the micro-structural effects is too fine. The simulation time becomes even higher when dealing with highly non-linear material behaviour, e.g. damage, plasticity and such others. Therefore, a multi-scale strategy is proposed here that facilitates the simulation of non-linear heterogeneous material behaviour in a manner that is computationally feasible. Based on the asymptotic homogenisation theory, this multi-scale technique explores the micro–macro behaviour for elasto-(visco)plasticity coupled with damage. The theory inherently segregates the heterogeneous continua into a macroscopic homogeneous structure and an underlying heterogeneous microscopic periodic unit cell. Several heterogeneous structures have been simulated using the multi-scale method along with a one-dimensional verification with respect to a reference solution. Additionally, a reduced order modelling is used to prevent large memory requirement for storing micro-structural quantities of interest.

Funder

Carnot Institute Lyon

Publisher

SAGE Publications

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science,Computational Mechanics

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Hierarchical modeling of heterogeneous structures driven by a modeling error estimator;Computer Methods in Applied Mechanics and Engineering;2024-01

2. A convex anisotropic damage model based on the compliance tensor;International Journal of Damage Mechanics;2021-07-02

3. A multiscale reduced‐order‐model strategy for transient thermoelasticity with variable microstructure;International Journal for Numerical Methods in Engineering;2021-04-15

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