Influence of microstructure on rate-dependent response of unidirectional fibrous composites

Authors

  • Soňa Valentová Czech Technical University in Prague, Faculty of Civil Engineering, Thákurova 7, 166 29 Prague 6, Czech Republic
  • Michal Šejnoha Czech Technical University in Prague, Faculty of Civil Engineering, Thákurova 7, 166 29 Prague 6, Czech Republic
  • Jan Vorel Czech Technical University in Prague, Faculty of Civil Engineering, Thákurova 7, 166 29 Prague 6, Czech Republic
  • Zdeněk Prošek Czech Technical University in Prague, Faculty of Civil Engineering, Thákurova 7, 166 29 Prague 6, Czech Republic

DOI:

https://doi.org/10.14311/APP.2022.34.0127

Keywords:

viscoelasticity, fibrous composites, Mori-Tanaka method, periodic unit cell, generalized Leonov model, Maxwell chain model, creep

Abstract

This paper outlines prediction of the macroscopic response of unidirectional fibrous composites made either from basalt or carbon fibers impregnated by a polymeric epoxy matrix. The viscoelastic response of the matrix phase was represented by the Maxwell chain model. A series of creep tests performed at several stress levels served as a stepping stone for the model calibration. The macroscopic behavior of both composites was first examined via computational homogenization. Attention was accorded to computational cells with variable size extracted from large representative images. We observed that selecting the computational model as a sufficiently large test window should be approached with caution. Because initial designs often need a large parametric study to test various material and geometrical patterns, this study was then supported by computationally much more effective Mori-Tanaka averaging scheme, clearly showing its potential even if loading the composite beyond its elastic limit.

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Published

2022-03-24

How to Cite

Valentová, S. ., Šejnoha, M. ., Vorel, J., & Prošek, Z. (2022). Influence of microstructure on rate-dependent response of unidirectional fibrous composites. Acta Polytechnica CTU Proceedings, 34, 127–132. https://doi.org/10.14311/APP.2022.34.0127