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Numerical modelling of hybrid elastomeric composite panels subjected to blast loadings

机译:爆炸载荷作用下混合弹性复合材料面板的数值模拟

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Designing lightweight composite panels that can resist extreme impulsive loadings is of great interest for defence and infrastructure protective applications. In this work, a finite element model is developed to understand the deformation and failure mechanisms of a multilayered elastomer/fibre-reinforced polymer (FRP) composite panel under blast. Fibre (E-glass fibre) and matrix (vinylester resin) damage and degradation of individual unidirectional composite laminas are modelled using the Hashin failure model. The delamination between composite laminates is captured by three-dimensional bilinear cohesive elements. A thin elastomer (polyurea) layer is applied to the back face of the panel to reduce damage to the composite laminates. The predicted deformation histories, evolutions of fibre/matrix damage patterns, and inter-lamina delamination are captured and compared between monolithic and hybrid elastomer/composite panels. The model reveals the important role of the elastomer layer in improving panel performance by effectively mitigating the transmitted impulse to the back face of the panel and reducing delamination, while maintaining overall stiffness. (C) 2016 Elsevier Ltd. All rights reserved.
机译:对于国防和基础设施保护应用而言,设计能够抵抗极端冲击载荷的轻质复合板非常重要。在这项工作中,开发了一个有限元模型来了解爆炸下多层弹性体/纤维增强聚合物(FRP)复合板的变形和破坏机理。纤维(电子玻璃纤维)和基质(乙烯基酯树脂)的损坏以及单个单向复合层板的降解均使用Hashin破坏模型进行建模。复合层压板之间的分层是由三维双线性内聚元素捕获的。将薄的弹性体(聚脲)层应用于面板的背面,以减少对复合材料层压板的损坏。捕获并比较了预测的变形历史,纤维/基体破坏模式的演变以及层间分层,并在整体和混合弹性体/复合材料面板之间进行了比较。该模型通过有效减轻传递到面板背面的脉冲并减少分层,同时保持整体刚度,揭示了弹性体层在改善面板性能中的重要作用。 (C)2016 Elsevier Ltd.保留所有权利。

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