Model prediction of unidirectional fiber-reinforced composites under finite deformation

Author:

Lu Xing1ORCID,Wei Jianhui2,Zhao Wei2,Zhang Wenwu3,Zhou Helezi1,Liu Zinan1ORCID,Peng Xiongqi3,Huang Zhigao1,Zhou Huamin1

Affiliation:

1. State Key Laboratory of Materials Processing and Die & Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan, China

2. Wuhan Second Ship Design and Research Institute, Wuhan, China

3. School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai, China

Abstract

The intuitive knowledge is that the mechanical modulus of unidirectional fiber-reinforced composites (UD-FRPs) decreases with higher fiber orientation angles. However, numerical results in this work and experimental results in previous literature indicate that the mechanical response of UD-FRPs has a U-shaped dependence on fiber orientation angle. To explain this phenomenon, we develop an anisotropic model to capture the mechanical behavior of UD-FRPs. The strain energy is decomposed into four components: matrix, fiber, fiber-matrix normal, and shear interactions. Each component can be determined by matching the mechanical responses of unit cells with 0°, 45°, and 90° off-axis. The results obtained from the presented model match well with the numerical response of unit cells with 15°, 30°, 60°, and 75° off-axis. With an increasing fiber orientation angle, the matrix part remains unchanged, the fiber component decreases, but the fiber-matrix normal component increases, and the fiber-matrix shear component increases and then decreases. The change in strain energy contributions explains the mechanism of the U-shaped dependence of the mechanical response on fiber orientation angle.

Funder

A novel three-dimensional nanostructure to enhance the damping performance of carbon fiber composites and the RTM forming process

A novel manufacturing method for complex geometry carbon fiber reinforced thermoplastic composite parts by integration of automated fiber placement and injection molding

Publisher

SAGE Publications

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