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复合材料在航天器空间辐射屏蔽中的适用性。

Applicability of composite materials for space radiation shielding of spacecraft.

机构信息

Radiation Measurement Research Group, National Institute of Radiological Sciences, National Institutes for Quantum and Radiological Science and Technology, Chiba 263-8555, Japan.

Space Systems Division, Integrated Defense & Space Systems, Mitsubishi Heavy Industries, Ltd., Aichi 455-8515, Japan.

出版信息

Life Sci Space Res (Amst). 2021 Nov;31:71-79. doi: 10.1016/j.lssr.2021.08.004. Epub 2021 Aug 30.

Abstract

Energetic ion beam experiments with major space radiation elements, H, He, O, Si and Fe, have been conducted to investigate the radiation shielding properties of composite materials. These materials are expected to be used for parts and fixtures of space vehicles due to both their mechanical strength and their space radiation shielding capabilities. Low Z materials containing hydrogen are effective for shielding protons and heavy ions due to their high stopping power and large fragmentation cross section per unit mass. The stopping power of the composite materials used in this work is intermediate between that of aluminum and polyethylene, which are typical structural and shielding materials used in space. The total charge-changing cross sections per unit mass, σ, of the composite materials are 1.3-1.8 times larger than that of aluminum. By replacing conventional aluminum used for spacecraft with commercially available composite (carbon fiber / polyether ether ketone), it is expected that the shielding effect is increased by ∼17%. The utilization of composite materials will help mitigate the space radiation hazard on future deep space missions.

摘要

已开展了含主要空间辐射元素 H、He、O、Si 和 Fe 的高能离子束实验,以研究复合材料的辐射屏蔽性能。这些材料由于其机械强度和空间辐射屏蔽能力,有望用于航天器的部件和固定装置。含氢的低 Z 材料由于其高阻止本领和单位质量的大碎裂截面,对于屏蔽质子和重离子是有效的。本工作中使用的复合材料的阻止本领在典型的空间结构和屏蔽材料铝和聚乙烯之间。复合材料的单位质量的总电荷改变截面 σ 比铝大 1.3-1.8 倍。通过用市售复合材料(碳纤维/聚醚醚酮)代替用于航天器的常规铝,可以预期屏蔽效果增加约 17%。复合材料的使用将有助于减轻未来深空任务中的空间辐射危害。

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