Micromechanical modeling of 8-harness satin weave glass fiber-reinforced composites

Author:

Choudhry RS123,Khan Kamran A4,Khan Sohaib Z5,Khan Muhammad A5,Hassan Abid3

Affiliation:

1. Department of Mechanical Engineering, Capital University of Science and Technology, Pakistan

2. National Composites Certification and Evaluation Facility, University of Manchester, UK

3. Department of Mechanical Engineering, National University of Sciences and Technology (NUST), Pakistan

4. Department of Aerospace Engineering, Khalifa University of Science, Technology and Research (KUSTAR), UAE

5. Department of Mechanical Engineering, PN Engineering College, National University of Sciences and Technology, Karachi, Pakistan

Abstract

This study introduces a unit cell-based finite element micromechanical model that accounts for correct post cure fabric geometry, in situ material properties and void content within the composite to accurately predict the effective elastic orthotropic properties of 8-harness satin weave glass fiber-reinforced phenolic composites. The micromechanical model utilizes a correct post cure internal architecture of weave, which was obtained through X-ray microtomography tests. Moreover, it utilizes an analytical expression to update the input material properties to account for in situ effects of resin distribution within yarn (the yarn volume fraction) and void content on yarn and matrix properties. This is generally not considered in modeling approaches available in literature and in particular, it has not been demonstrated before for finite element micromechanics models of 8-harness satin weave composites. The unit cell method is used to obtain the effective responses by applying periodic boundary conditions. The outcome of the analysis based on the proposed model is validated through experiments. After validation, the micromechanical model was further utilized to predict the unknown effective properties of the same composite.

Publisher

SAGE Publications

Subject

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

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