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Blast response study of the sandwich composite panels with 3D chiral auxetic core

机译:具有3D手性膨胀芯的夹芯复合板的爆炸响应研究

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Chiral auxetic cellular structures were fabricated from Ti6Al4V alloy using the Selective Electron Beam Melting method, and tested experimentally under quasi-static and dynamic compression loading conditions. The experimental results were used to validate built computational models of auxetic cellular structure in LS-DYNA. The models were used to study the geometry effect on the Poisson's ratio of the analysed chiral auxetic structure. The response of sandwich composite panels with auxetic core under blast loading was studied extensively computationally, where the maximum panel displacement and the Specific Energy Absorption (SEA) of the composite panel were evaluated. Three different methods for blast loading (ConWep, Smooth Particle Hydrodynamic, Multi-Material Arbitrary Lagrange-Eulerian) were compared and validated based on the experimental data. It was determined that larger thickness of the cover plate lowers the panel maximum displacement, while the SEA is larger when thinner cover plates are used. Also, it was shown that the chiral unit cell amplitude effect on the maximum displacement and SEA is, in most analysed cases, negligible in comparison to the cell length effect, which is more prominent. The presented study illustrates great potential of using sandwich structures with designed auxetic cellular cores to improve the response of modern composite structures to blast loading.
机译:使用选择性电子束熔化方法,由Ti6Al4V合金制成手性膨胀细胞结构,并在准静态和动态压缩载荷条件下进行了实验测试。实验结果用于验证建立的LS-DYNA中的房颤细胞结构的计算模型。该模型用于研究几何形状对所分析的手性膨胀结构的泊松比的影响。在爆炸载荷作用下,对具有膨胀核心的夹芯复合板的响应进行了广泛的计算研究,评估了复合板的最大板位移和比能量吸收(SEA)。根据实验数据对爆炸加载的三种不同方法(ConWep,光滑粒子流体动力学,多材料任意拉格朗日-欧拉)进行了比较和验证。已确定,较大的盖板厚度会降低面板的最大位移,而当使用较薄的盖板时,SEA会更大。此外,还表明,在大多数分析情况下,与细胞长度效应相比,手性单位细胞振幅对最大位移和SEA的影响可忽略不计,这一点更为突出。提出的研究表明了使用具有设计的膨胀蜂窝状芯的夹层结构来改善现代复合结构对爆炸载荷的响应的巨大潜力。

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