用自适应平滑粒子流体力学验证冰撞击行星防御

D. Graninger, M. Syal, J. Owen, P. Miller
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摘要

了解潜在危险物体(PHO)对动能撞击的反应是行星防御界非常感兴趣的。目标响应取决于PHO的详细材料特性,这可能无法事先得到很好的约束。因此,探索各种靶成分对动力学冲击偏转是有用的。之前的验证工作主要集中在了解普通岩石材料的行为上,尽管PHOs并不完全由这些材料组成。水冰是一种材料,只有有限的代码验证与陨石坑实验。众所周知,彗星主要由冰物质组成,一些小行星可能含有一定量的冰。因此,了解冰在挠曲模拟中的模型灵敏度是有用的。本文采用自适应光滑粒子流体力学方法模拟了铝弹丸撞击水冰的过程。我们探索了代码中对损伤模型的敏感性,发现冰的最佳拟合模拟发生在威布尔模量为12时,尽管威布尔模量的值可以接近公布的值9.59。这项工作证明了使用自适应平滑粒子流体力学代码来模拟对冰的影响的有效性。
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Validating Ice Impacts Using Adaptive Smoothed Particle Hydrodynamics for Planetary Defense
Understanding how a potentially hazardous object (PHO) responds to a kinetic impactor is of great interest to the planetary defense community. Target response depends upon the detailed material properties of the PHO, which may not be well constrained ahead of time. Hence, it is useful to explore a variety of target compositions for kinetic impact deflection. Previous validation efforts have focused primarily on understanding the behavior of common rocky materials, though PHOs are not exclusively composed of such material. Water ice is one material for which there has been only limited code validation against cratering experiments. It is known that comets consist of primarily icy material and some asteroids likely contain some amount of ice. Therefore, it is useful to understand the model sensitivities for ice in deflection simulations. Here we present Adaptive Smoothed Particle Hydrodynamics simulations of impacts into water ice by an aluminum projectile. We explore the sensitivities to the damage model within our code and find that the best-fit simulations of ice occur with a Weibull modulus of 12, though results can be obtained with values of the Weibull modulus near the published value of 9.59. This work demonstrates the efficacy of using an adaptive smoothed particle hydrodynamics code to simulate impacts into ice.
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