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Scaling Impact Crater Dimensions to Predict Micrometeorite Damage of Biopolymer-Stabilized Regolith

机译:缩放撞击坑的尺寸,以预测稳定化生物聚合物的Regolith的微陨石损坏

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Long-term habitation outside of Earth's atmosphere requires infrastructure that can protect astronauts and equipment from significant environmental hazards. In turn, the materials used to build these protective structures must be durable enough to withstand the environment over time. One notable hazard of the space environment is micrometeorite impacts. This research examines the effects of micrometeorite impacts on regolith biocomposite (RBC), a proposed material technology that transforms in situ materials, such as planetary or lunar regolith, into useful structural elements such as stable landing pads, pavements that prevent dust levitation, radiation shielding, and habitats. To characterize the relationship between the intensity of a hypervelocity impact and the incurred damage of RBC, a total of nine hypervelocity impact experiments were conducted. Resulting craters in the test materials were measured and transient crater dimensions were calculated. Analytical power-law relationships between impact velocity and transient crater diameter and volume were derived using Holsapple's pi-group strength scaling laws.
机译:在地球大气层以外的长期居住环境需要能够保护宇航员和设备免受重大环境危害的基础设施。反过来,用于构建这些保护性结构的材料必须足够耐久,以随着时间的推移经受住环境。空间环境的一项显着危害是微陨石撞击。这项研究研究了微陨石对菱形生物复合物(RBC)的影响,RBC是一种提议的材料技术,可将原位材料(例如行星状或月球形的菱形岩)转变成有用的结构元素,例如稳定的着陆垫,防止灰尘悬浮的人行道,辐射屏蔽和栖息地。为了表征超高速撞击的强度与RBC造成的损害之间的关系,共进行了九次超高速撞击实验。测量了测试材料中产生的陨石坑,并计算了瞬时陨石坑尺寸。使用Holsapple的pi-group强度缩放定律推导了撞击速度与瞬变弹坑直径和体积之间的解析幂律关系。

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