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Conference paper

Computational Micromechanics of Damage Initiation and Growth in Functionally Graded Composites

In Multiscale and Functionally Graded Materials — 2008, Volume 973, Issue 1, pp. 216-221
From

Composites and Materials Mechanics, Materials Research Division, Risø National Laboratory for Sustainable Energy, Technical University of Denmark1

Materials Research Division, Risø National Laboratory for Sustainable Energy, Technical University of Denmark2

Risø National Laboratory for Sustainable Energy, Technical University of Denmark3

Technische Universität Darmstadt4

The purpose of this work is to investigate the effect of microstructures of functionally graded particle reinforced composites on the strength and damage resistance in the materials. In order to study the microstructure-strength and microstructure-darnage resistance relationships of graded composites with metal matrix and ceramic inclusions, a series of numerical mesomechanical experiments has been carried out.

The tensile stress-strain curves, fraction of failed particles versus applied strain curves, and stress and damage distributions at different stages of loading were determined for different generic (artificially designed) graded microstructures and compared. It was shown that the flow stress and stiffness of composites increase and failure strain decreases with decreasing property gradient (i.e., when the particles become more localized in some material regions).

The damage growth in particles in graded composites initiates within particles, which are located in the transition zone between the zone of high particle density and the particle-free regions.

Language: English
Publisher: American Institute of Physics
Year: 2008
Pages: 216-221
Proceedings: MULTISCALE AND FUNCTIONALLY GRADED MATERIALS
ISBN: 0735404922 and 9780735404922
ISSN: 15517616 and 0094243x
Types: Conference paper
DOI: 10.1063/1.2896779
ORCIDs: Mishnaevsky, Leon

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