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Finite Element Analysis of the Effect for Different Thicknesses and Stitching Densities under the Low-Velocity Impact of Stitched Composite Laminates

材料科学 复合材料层合板 复合材料 图像拼接 分层(地质) 抗弯刚度 复合数 极限抗拉强度 有限元法 抗弯强度 刚度 结构工程 计算机科学 生物 工程类 俯冲 古生物学 人工智能 构造学
作者
Bangxiong Liu,Jiamei Lai,Hesheng Liu,Zhichao Huang,Tianlei Liu,Yousheng Xia,Wei Zhang
出处
期刊:Polymers [Multidisciplinary Digital Publishing Institute]
卷期号:15 (24): 4628-4628 被引量:5
标识
DOI:10.3390/polym15244628
摘要

In this study, a progressive damage model was developed for the mechanical response and damage evolution of carbon fiber stitched composite laminates under low-velocity impact (LVI). The three-dimensional Hashin and Hou failure criteria were used to identify fiber and matrix damage. The cohesive zone model was adopted to simulate the delamination damage, combined with the linear degradation discounting of the equivalent displacement method to characterize the stiffness degradation of the material, and the corresponding user material subroutine VUMAT was coded. The finite element analysis of the LVI of stitched composite laminates under different energies was finished in Abaqus/Explicit. Furthermore, the simulation predictions matched well with the results of the experimental tests. Based on this, composite laminates' mechanical response and damage forms with different thicknesses and stitch densities were analyzed. The findings show that the main damages of composite laminates were matrix tensile damage and delamination. The stitching process could improve the impact tolerance of composite laminates, inhibiting delamination and reducing the area of the delamination damage. The higher the density of the stitching, the more noticeable its inhibition would be. The thickness of the laminate also had a more significant effect on the damage to the laminate. Thin plates were more prone to matrix tensile damage due to their lower flexural rigidity, whereas thick plates were more susceptible to delamination because of their higher flexural rigidity.
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