Micromechanical modeling of longitudinal compression behavior and failure mechanism of unidirectional carbon fiber reinforced aluminum composites involving initial fiber misalignment

Author:

Jiang Wengang12,Wang Zhenjun1ORCID,Liu Qipeng12ORCID,Gao Yuehua12ORCID,Wu Zhiyong1,Xiong Bowen1,Wang Fang1,Yao Yufeng3

Affiliation:

1. School of Aeronautical Manufacturing Engineering Nanchang Hangkong University Nanchang China

2. National Defense Key Disciplines Laboratory of Light Alloy Processing Science and Technology Nanchang Hangkong University Nanchang China

3. School of Engineering University of the West of England Bristol UK

Abstract

AbstractA micromechanical model with realistic initial fiber misalignment (IFM) was developed to simulate the longitudinal compression behavior of unidirectional carbon fiber/aluminum composites. The matrix and fiber were modeled using ductile damage law and brittle fracture model, respectively. The interfacial properties were firstly determined by the single‐fiber push‐out and transverse tensile tests, and the cohesive zone model was adopted to capture the interfacial behavior. The calculated compressive response curve is in alignment with the experimental data. Compression failure can be attributed to fiber kinking, possibly triggered by the matrix shear damage. The increase of IFM angle makes the failure mode being transformed from fiber crushing to fiber kinking, along with a significant decrease in compressive strength. With the fiber content increasing, the compressive strength increases first and then decreases, while the compressive modulus increases monotonically. Increasing interfacial strength significantly improves the compressive strength, but this is limited by the matrix properties.

Funder

National Natural Science Foundation of China

Jiangxi Provincial Department of Science and Technology

Natural Science Foundation of Jiangxi Province

Publisher

Wiley

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