Numerical study of dynamic behavior of foams subjected to high- to hyper-velocity impact

Xiaotian Zhang, Ruiqing Wang, Q. M. Li
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Abstract

Hypervelocity tests and numerical studies have been reported in the literature for aluminum foam to show its potential applications in spacecraft shielding against space debris based on “shielding set-up”. Meanwhile the “forward impact” set-up has been widely reported in the literature to study the dynamic behavior of the foam materials in the range of low to intermediate impact velocities. This paper extends the forward impact to high- and hyper-velocity impacts to understand the dynamic deformation and failure mechanisms based on numerical simulation. The focused impact velocity range is from about 1km/s to 6km/s. The cell-based numerical model of the foam material is used along with the Smoothed Particle Hydrodynamics (SPH) method to simulate the deformation and the failure process. The failure of the foam materials in the range of intermediate to high impact velocities is related to the plastic yielding and crushing of the foam cell, while that in the hypervelocity impact regime is related to the cell material erosion. Dynamic effects in different impact velocity ranges also lead to shock and strain-rate effects. Understanding of the dependence of the deformation/failure mechanisms on the impact velocity helps to determine the application of foam materials in the relevant range of impact velocities.
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高速至超高速冲击下泡沫材料动力特性的数值研究
文献中报告了泡沫铝的超高速试验和数值研究,以显示其在基于"屏蔽装置"的航天器屏蔽空间碎片方面的潜在应用。同时,“前向冲击”装置已被广泛报道,用于研究泡沫材料在中低冲击速度范围内的动力学行为。本文在数值模拟的基础上,将正向碰撞扩展到高速和超高速碰撞,以了解动态变形和破坏机制。聚焦冲击速度范围约为1km/s ~ 6km/s。采用基于单元的泡沫材料数值模型,结合光滑颗粒流体力学(SPH)方法模拟泡沫材料的变形和破坏过程。在中高冲击速度范围内,泡沫材料的破坏与泡沫孔的塑性屈服和破碎有关,而在超高速冲击状态下,泡沫材料的破坏与泡沫孔材料的侵蚀有关。不同冲击速度范围内的动态效应也会导致冲击和应变率效应。了解变形/破坏机制对冲击速度的依赖关系,有助于确定泡沫材料在相应冲击速度范围内的应用。
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