A strain rate dependent and anisotropic failure material model for short fiber reinforced plastics based on energy density accounting for local fiber orientation

Author:

Schweiger Timo12ORCID,Lienhard Jörg1,Hiermaier Stefan3

Affiliation:

1. Fraunhofer Institute for Mechanics of Materials IWM, Component Safety and Lightweight Construction, Freiburg, Germany

2. Timo Schweiger, Fraunhofer-Institut für Werkstoffmechanik IWM, Bauteilsicherheit und Leichtbau, Wöhlerstr. 11, Freiburg 79108, Germany.

3. Institute for Sustainable Systems Engineering, Albert-Ludwigs Universität Freiburg, Freiburg, Germany

Abstract

A failure model for SFRP for FEM simulations is developed to describe the strain rate dependency, the influence of the local fiber orientation and of the stress state on the failure behavior. The material is considered as a continuum while internally calculating the micro-mechanics analytically. The described micro-mechanics are based on experimental observations and on analyzation with numerical studies. In particular the strain rate dependent delamination of fibers and matrix is incorporated in the model. The distortion energy density is defined as the driving value for failure and estimated by the model. This is achieved with the analytic solution by Eshelby for the stress field in the matrix and by introducing an additional phase for the plasticly deformed volume. The validation on characterization specimens as well as component test demonstrates that the influence of strain rate, fiber orientation, and stress state on the failure behavior can be described with only one material parameter, the critical distortion energy density.

Publisher

SAGE Publications

Subject

Materials Chemistry,Mechanical Engineering,Mechanics of Materials,Ceramics and Composites

Reference42 articles.

1. Jayan J. Fibre reinforced composites: constituents, compatibility, perspectives and applications. 1st ed. Duxford: Woodhead Publishing, 2021, pp. 1–24.

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