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Radial Inertia Effect on Dynamic Compressive Response of Polymeric Foam Materials

机译:径向惯性对聚合物泡沫材料动态压缩响应的影响

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Polymeric foams have been extensively used in shock isolation applications because of their superior shock or impact energy absorption capability. However, as a type of soft condensed matter, the highly nonlinear, heterogeneous, and dissipative behavior of polymeric foams may result in an ineffective mitigation or isolation to shock/blast loading. To meet certain desired shock mitigation or isolation requirements, the polymeric foams need to be experimentally characterized to obtain their intrinsic material response. However, radial inertia during dynamic compression has become a severe issue and needs to be fully understood. In this study, we developed an analytical method to calculate the additional stress induced by radial inertia in a polymeric foam specimen. The radial inertia is generally caused by Poisson's effect and associated with three different mechanisms - axial strain acceleration, large deformation, and Poisson's ratio change. The effect of Poisson's ratio change during deformation on radial inertia was specifically investigated for hyperelastic foam materials, and verified with experimental results obtained from Kolsky compression bar tests on a silicone foam.
机译:由于其优越的休克或冲击能量吸收能力,聚合物泡沫已被广泛地用于休克隔离应用。然而,作为一种柔软的冷凝物质,聚合物泡沫的高度非线性,异构和耗散行为可能导致休克/喷砂载荷的无效减缓或分离。为了满足某些所需的休克减缓或隔离要求,需要实验表征聚合物泡沫以获得其内在材料反应。然而,动态压缩期间的径向惯性已成为一个严峻的问题,需要完全理解。在这项研究中,我们开发了一种分析方法,以计算聚合物泡沫样品中的径向惯性诱导的额外应力。径向惯性通常由泊松效果引起,与三种不同的机制相关 - 轴向应变加速,大变形和泊松比变化。针对高速泡沫材料进行了径向惯性变形变形过程中泊松比变化的影响,并用从硅氧烷泡沫的Kolsky压缩棒试验获得的实验结果验证。

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