Multiscale finite element analysis of uncertain-but-bounded heterogeneous materials at finite deformation

verfasst von
Juan Ma, Wenyi Du, Wei Gao, Peter Wriggers, Xiangdong Xue
Abstract

A new computationally interval homogenization modelling for heterogeneous materials with uncertain-but-bounded parameters is presented in a deformation controlled setting, and the homogenization analysis in the context of elasticity at finite deformation is then addressed by an integrative approach of finite element method with the optimization algorithms where the interval uncertainty in the microstructure of the material is fully considered. Different deformation-controlled boundary conditions are imposed on the representative volume element, and the interval effective quantities involving the tangent tensor and the first Piola–Kirchhoff stress tensor as well as the strain energy together with the effective moduli are obtained. The influences of different uncertain cases on the interval effective quantities are also analyzed. For the purpose of verification, the results from particle swarm optimization (PSO) algorithm are compared with those obtained from genetic algorithm (GA) and Monte-carlo simulation. The feasibility and validity of the proposed modelling method are evidenced by the well-agreed consequences among the above algorithms.

Organisationseinheit(en)
Institut für Kontinuumsmechanik
Externe Organisation(en)
Xidian University
University of New South Wales (UNSW)
Typ
Artikel
Journal
Finite Elements in Analysis and Design
Band
149
Seiten
15-31
Anzahl der Seiten
17
ISSN
0168-874X
Publikationsdatum
15.09.2018
Publikationsstatus
Veröffentlicht
Peer-reviewed
Ja
ASJC Scopus Sachgebiete
Analysis, Allgemeiner Maschinenbau, Computergrafik und computergestütztes Design, Angewandte Mathematik
Elektronische Version(en)
https://doi.org/10.1016/j.finel.2018.06.001 (Zugang: Geschlossen)
 

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