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Erschienen in: International Journal of Mechanics and Materials in Design 4/2017

23.08.2016

Heterogeneous and homogenized models for predicting the indentation response of particle reinforced metal matrix composites

verfasst von: A. S. Shedbale, I. V. Singh, B. K. Mishra

Erschienen in: International Journal of Mechanics and Materials in Design | Ausgabe 4/2017

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Abstract

In this study, three-dimensional heterogeneous and homogenized finite element models are used to predict the indentation response of particle reinforced metal matrix composites (PRMMCs). The matrix is assumed to have elasto-plastic behavior whereas the particles (uniform in size and spherical in shape) are assumed to be harder than the matrix, and possess linear elastic behavior. The particles (25 % by volume) are randomly distributed in the metal matrix. Two modeling approaches are used. In the first approach, the PRMMC is fully replaced by an equivalent homogenous material, and its material properties are obtained through homogenization using representative volume element approach under periodic boundary conditions. In second approach, a small cubical volume under the indenter is modeled as heterogeneous material with randomly distributed particles, whereas the remaining domain is assigned equivalent material properties obtained through homogenization. The elastic material properties obtained through simulations are found within Hashin–Shtrikman bounds. A suitable size cubical volume consisting of heterogeneities under the indenter is established by considering different cubical volumes so as to capture the actual indentation response. The simulations are also carried out for different particle sizes to establish a suitable particle size. These simulations show that the second modeling approach yields harder indentation response as compared to first modeling approach due to the local particle concentration under the indenter.

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Metadaten
Titel
Heterogeneous and homogenized models for predicting the indentation response of particle reinforced metal matrix composites
verfasst von
A. S. Shedbale
I. V. Singh
B. K. Mishra
Publikationsdatum
23.08.2016
Verlag
Springer Netherlands
Erschienen in
International Journal of Mechanics and Materials in Design / Ausgabe 4/2017
Print ISSN: 1569-1713
Elektronische ISSN: 1573-8841
DOI
https://doi.org/10.1007/s10999-016-9352-3

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