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A Micromechanical Modeling Approach to Describe the Dynamic Spalling of Ceramic Materials.

Authors :
Erzar, B.
Le Blanc, G.
Malaise, F.
Buzaud, E.
Source :
AIP Conference Proceedings. 2018, Vol. 1979 Issue 1, p070012-1-070012-5. 5p.
Publication Year :
2018

Abstract

Subjected to a dynamic traction, a ceramic material will eventually fail as a consequence of the triggering, propagation and coalescence of a distribution of microcracks. The DFH (Denoual-Forquin-Hild) anisotropic damage model considered in this study is based on a description of three physical phenomena activated all along the fragmentation process occurring in brittle materials. The first one concerns the activation of the population of preexisting defects distributed in the material, described by a Weibull law. The second one corresponds to the propagation of microcracks at a constant velocity. The last one is the so-called occultation phenomenon. It is based on the observation that in the vicinity of a crack, tensile stresses are relaxed, hence precluding the triggering of another crack in the same direction. The performance of DFH model has been assessed with the aim of improving the modeling of damage associated to spalling in ceramic materials. Dynamic tensile loadings have been performed at different strain rates, by means of a plate impact and a quasi-isentropic compression followed by a release wave. The characteristics of different patterns of damage observed experimentally have been accurately reproduced by means of three-dimensional Lagrangian calculations. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0094243X
Volume :
1979
Issue :
1
Database :
Academic Search Index
Journal :
AIP Conference Proceedings
Publication Type :
Conference
Accession number :
130527732
Full Text :
https://doi.org/10.1063/1.5044821