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Poisson's Ratio Induced Radial Inertia Confinement During Dynamic Compression of Hyperelastic Foams

机译:泊松的比率在高速泡沫动态压缩过程中诱导径向惯性限制

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Hyperelastic foams have excellent impact energy absorption capability and can experience full recovery following impact loading. Consequently, hyperelastic foams are selected for different applications as shock isolators. Obtaining accurate intrinsic dynamic compressive properties of the hyperelastic foams has become a crucial step in shock isolation design and evaluation. Radial inertia is a key issue in dynamic characterization of soft materials. Radial inertia induced stress in the sample is generally caused by axial acceleration and large deformation applied to a soft specimen. In this study, Poisson's ratio of a typical hyperelastic foam - silicone foam - was experimentally characterized under high strain rate loading and was observed to drastically change across the densification process. A transition in the Poisson's ratio of the silicone foam specimen during dynamic compression generated radial inertia which consequently resulted in additional axial stress in the silicone foam sample. A new analytical method was developed to address the Poisson's ratio-induced radial inertia effects for hyperelastic foams during high rate compression.
机译:超弹性泡沫具有出色的冲击能量吸收能力,并且可以在冲击载荷后恢复全面。因此,选择超弹性泡沫,用于不同的应用作为休克隔离器。获得高档泡沫的准确内在动态压缩性能已成为冲击隔离设计和评估的关键步骤。径向惯性是软材料动态特征的关键问题。径向惯性诱导样品中的应力通常由轴向加速和施加到软样品的大变形引起。在本研究中,泊松的典型超弹性泡沫 - 硅氧烷泡沫的比例 - 在高应变速率荷载下进行实验表征,并观察到在致密化过程中大大变化。动态压缩期间有机硅泡沫样品的泊松泡沫样品比率的过渡产生的径向惯性,从而导致硅氧烷泡沫样品中的额外轴向应力。开发了一种新的分析方法,以解决高速压缩期间高速泡沫的泊松比辐射径向惯性效应。

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