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Modeling on Propagation of Shock Waves Induced by Hypervelocity Impact (HVI) with Application to Evaluation of HVI Damage

机译:超细兴撞击(HVI)引起的冲击波传播模拟应用于评估HVI损伤

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A hypervelocity impact (HVI) of an aluminium sphere into an aluminium plate with a speed around 4000 m/s is numerically modeled and experimentally verified. Ubiquitous in outer space and significantly different from low velocity impact (LVI), HVI features transient, localized, and extreme material deformation in an adiabatic process, under which the induced shock waves present unique yet complex features. To numerically study this normal HVI phenomenon, a dedicated hybrid modeling combining the three-dimensional smooth-particle hydrodynamics (SPH) with the finite element analysis was developed, to gain an insight into characteristics of HVI-induced shock wave propagation. The effectiveness and accuracy of the modeling and simulation was demonstrated through quantitative coincidence in results between simulation and HVI experiment. Shock wave signal features on both time and frequency domain are analyzed intensively based on the theoretical model of HVI. Upon understanding the characteristics of HVI-induced shock waves, an acoustic emission (AE) based characterization strategy, targeting HVI-committed damage, was subsequently established using an enhanced delay-and-sum-based diagnostic imaging algorithm, and this strategy was validatedby locating orbital debris-induced penetration in space structures, showing precise identification results.
机译:铝球的超高速撞击(HVI)到铝板围绕4000米/ s的速度进行了数值模拟和实验验证。无处不在外层空间和从低速冲击(LVI)显著不同,HVI设有瞬时的,局部的和极端的材料变形在绝热过程中,在其下诱导冲击波呈现独特而复杂的功能。进行数值研究这种正常HVI现象,专用混合建模结合三维光滑粒子流体动力学(SPH)与有限元分析的开发,为了深入了解HVI诱导的冲击波传播的特性。建模和仿真的有效性和准确性是通过在模拟和实验HVI之间的结果定量重合证实。在时间和频率两者域冲击波信号特征进行了分析集中基于HVI的理论模型。在理解HVI诱导的冲击波的特性,声发射(AE)基于表征策略,靶向HVI-致力于损伤,随后使用增强延迟与基总和诊断成像算法成立,而这种战略是validatedby定位轨道碎片引起的渗透在空间结构中,示出了精确的鉴定结果。

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