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Characterization of the ballistic limit curve for metallic Whipple shield

机译:金属Whipple盾构的弹道极限曲线的特征

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It has been known that space debris or meteoroid impact damage can have significant effects on spacecraft. Experimental test has been conducted up to 7 km/s, and numerical simulations are performed at higher velocities. Studies on the hypervelocity impact onto single plate, double spaced plates (Whipple shield), and multiple plates (MS shield) have been performed and ballistic limit curves (BLCs) are proposed. Last 15 years SPH (Smoothed Particle Hydrodynamics) has been applied to the hypervelocity impact problems because of cost of test and numerical efficiency especially in the hypervelocity impact regime. Although most of the simulations captured the debris shape well, somehow they do not seem to match well with the empirical ballistic limit curves. We have recently developed a new axisymmetric SPH hydrocode. In order to assess the confidence that should be placed in such simulations we simulated the hypervelocity impacts on aluminum Whipple shields and compared with the empirical BLCs. The SPH simulations indicated an improved accuracy compared with the previously published SPH simulation results. Other effort we put was using different types of equation of state, however no further improvement was achieved.
机译:众所周知,空间碎片或流星体撞击损坏会对航天器产生重大影响。已经进行了高达7 km / s的实验测试,并以更高的速度进行了数值模拟。研究了超高速冲击对单板,双间距板(Whipple防护板)和多板(MS防护板)的影响,并提出了弹道极限曲线(BLC)。过去15年以来,由于测试成本和数值效率(特别是在超高速冲击方案中),SPH(平滑粒子流体动力学)已应用于超高速冲击问题。尽管大多数模拟都很好地捕获了碎片形状,但它们似乎与经验弹道极限曲线似乎不太匹配。我们最近开发了一种新的轴对称SPH液压代码。为了评估在此类模拟中应放置的置信度,我们模拟了高速冲击对铝Whipple盾的影响,并与经验BLC进行了比较。与以前发布的SPH仿真结果相比,SPH仿真显示出更高的准确性。我们投入的其他努力是使用不同类型的状态方程,但是没有实现进一步的改进。

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