Technical Papers
Feb 8, 2016

Determining the Size of RVE for Nonlinear Random Composites in an Incremental Computational Homogenization Framework

Publication: Journal of Engineering Mechanics
Volume 142, Issue 5

Abstract

In this paper, the authors address the issue of determining the size of a representative volume element (RVE) in the case of nonlinear random composites with either elastoplastic or elasto-viscoplastic phases. In such a case, the general form of the effective constitutive behavior is not known in advance and the response must be evaluated either by direct numerical computations on the RVE or by an appropriate approximation scheme. Previous methodologies for determining the size of RVE usually rely on analyzing the convergence of the RVE response computed numerically with respect to its size. In the present work, the convergence of parameters related to an incremental homogenization scheme is analyzed with respect to (1) the size of the RVE; and (2) statistical convergence related to microstructure realizations. For that purpose, an incremental homogenization method is combined with a statistical convergence analysis of parameters related to the matrix phase only. The advantage is that the range of parameters to be identified is much narrower than for a general empirical constitutive law. Once identified and once the convergence analysis is performed with respect to both size of RVE and statistical realizations, the macroscopic constitutive law can be readily used for structure calculations. The methodology is illustrated by analyzing two-dimensional microstructures with randomly distributed cylindrical elastic rigid fibers embedded in an elastoplastic or elasto-viscoplastic matrix. For these materials, the existence of an RVE is demonstrated for sizes of RVE corresponding to 17–18 and 14–15 times the diameter of the inclusions, respectively.

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Acknowledgments

The financial support this work enjoys from Ile-de France Region, BpiFrance, DGE, and the ILMAB Team is gratefully acknowledged.

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Go to Journal of Engineering Mechanics
Journal of Engineering Mechanics
Volume 142Issue 5May 2016

History

Received: Jan 15, 2015
Accepted: Nov 12, 2015
Published online: Feb 8, 2016
Published in print: May 1, 2016
Discussion open until: Jul 8, 2016

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Authors

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T. H. Hoang
Département de Mécanique Numérique et Modélisation, De Vinci Technology Lab., Ecole Supérieure d’Ingénieurs Léonard de Vinci (ESILV), F-92916 Paris la Défense Cedex, France; Université Paris-Est, Laboratoire Modélisation et Simulation Multi Échelle MSME UMR 8208 CNRS, 5 bd Descartes, F-77454 Marne-la-Vallée, France.
Département de Mécanique Numérique et Modélisation, De Vinci Technology Lab., Ecole Supérieure d’Ingénieurs Léonard de Vinci (ESILV), F-92916 Paris la Défense Cedex, France (corresponding author). E-mail: [email protected]
J. Yvonnet
Université Paris-Est, Laboratoire Modélisation et Simulation Multi Échelle MSME UMR 8208 CNRS, 5 bd Descartes, F-77454 Marne-la-Vallée, France.

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