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An experimental and numerical investigation on low velocity impact response of a composite structure inspired by dragonfly wing configuration

机译:蜻蜓机翼结构启发的复合材料结构低速冲击响应的实验和数值研究

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摘要

AbstractThe low velocity impact response of a novel foam-based composite structure inspired by microstructural features of dragonfly wings is investigated through the use of FE model and experiments. A nonlinear progressive damage model of the composite skins is incorporated into the FE code by VUMAT subroutine. Inter-laminar damage is reproduced using interface cohesive elements and the foam core is modeled as a crushable foam material. The numerical results are compared with experimental data acquired by impact testing on bio-inspired structures consisting of E-glass/epoxy skins filled by polyurethane foam, where a good agreement is achieved. To assess the contribution of the sandwich vein on the impact behavior of the structure, a comparison is made between different veiny structures and monolithic laminates with the same materials under low velocity impact. It is concluded that the sandwich vein can limit the damage propagation and makes the rest of the structure remain intact.
机译: 摘要 通过使用有限元模型研究了蜻蜓翅膀微观结构特征启发的新型泡沫复合材料结构的低速冲击响应和实验。通过VUMAT子例程将复合蒙皮的非线性渐进损伤模型合并到FE代码中。层间损坏使用界面粘合元件进行再现,泡沫芯被建模为可压碎的泡沫材料。将数值结果与通过对由聚氨酯泡沫填充的E玻璃/环氧表皮组成的生物启发结构进行冲击测试而获得的实验数据进行了比较,得出了很好的一致性。为了评估夹心静脉对结构冲击性能的影响,在低速冲击下,将不同的脉络结构与具有相同材料的整体式层压板进行了比较。结论是,夹心静脉可以限制损伤的传播,并使其余结构保持完整。

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