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Simulating low-velocity impact induced delamination in composites by a quasi-static load model with surface-based cohesive contact

机译:通过基于表面的内聚接触的准静态载荷模型模拟复合材料中的低速冲击诱导分层

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摘要

In this paper, a computationally efficient finite element model is presented for predicting low-velocity impact damage in laminated composites using a quasi-static load model with surface-based cohesive contact. The effect of compressive through-thickness stress on delamination is taken into account by introducing contact friction force in the shear force direction. Damage onset and propagation in a cross-ply plate [90(3)/0(3)](s) is simulated and the numerical results agree well with the experimental observation in terms of damage location, shape and size. Through-thickness stress analysis shows that resistance to the upper interface delamination propagation is mainly contributed by the friction force due to the high compressive through-thickness stress, whereas, for the lower interface, it is the cohesive behaviour that controls the delamination initiation and propagation. Predicted delamination area is not sensitive to the interlaminar friction coefficient when it is greater than 0.6. The range of friction coefficient of the interlaminar contact is recommended to be between 0.6 and 0.9. (C) 2015 Elsevier Ltd. All rights reserved.
机译:本文提出了一种计算有效的有限元模型,该模型使用具有基于表面的内聚接触的准静态载荷模型来预测层压复合材料中的低速冲击损伤。通过在剪切力方向上引入接触摩擦力,可以考虑到整个厚度压缩应力对分层的影响。模拟了交叉板[90(3)/ 0(3)](s)中的损伤起因和传播,数值结果在损伤位置,形状和大小方面与实验观察非常吻合。贯穿厚度的应力分析表明,由于较高的压缩贯穿厚度应力,对上界面分层扩展的阻力主要是由摩擦力引起的,而对于下界面,则内聚性控制了分层的起始和扩展。 。预测的分层面积大于0.6时,对层间摩擦系数不敏感。层间接触的摩擦系数范围建议在0.6到0.9之间。 (C)2015 Elsevier Ltd.保留所有权利。

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