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Space Weathering Experiments on Spacecraft Materials

机译:空间风化在航天器材料的实验

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A project to investigate space environment effects on specific materials with interest to remote sensing was initiated in 2016. The goal of the project is to better characterize changes in the optical properties of polymers found in multi-layered spacecraft insulation (MLI) induced by electron bombardment. Previous analysis shows that chemical bonds break and potentially reform when exposed to high energy electrons like those seen in orbit. These chemical changes have been shown to alter a material's optical signature, among other material properties. This paper presents the initial experimental results of MLI materials exposed to various fluences of high energy electrons, designed to simulate a portion of the geosynchronous Earth orbit (GEO) space environment. In situ optical reflectivity measurements are presented before, during and after electron dosing. It is shown that the spectral profile of some of the tested materials changes as a function of electron dose. These results provide an experimental benchmark for analysis of aging effects on satellite systems which can be used to improve remote sensing and space situational awareness. They also provide preliminary analysis on those materials that are most likely to comprise the high area-to-mass ratio (HAMR) population of space debris in the geosynchronous orbit environment. Finally, the results presented in this paper serve as a proof of concept for simulated environmental aging of spacecraft polymers that should lead to more experiments using a larger subset of spacecraft materials.
机译:2016年开始调查对具有遥感的特定材料的空间环境影响的项目。该项目的目标是更好地表征由电子轰击诱导的多层航天器绝缘(MLI)中发现的聚合物的光学性质的变化。以前的分析表明,当在轨道中看到的那些如此暴露于高能量电子时,化学粘合断裂和潜在的改革。已经显示出这些化学变化来改变材料的光学签名,以及其他材料特性。本文介绍了暴露于高能量电子的各种流量的MLI材料的初始实验结果,旨在模拟地球同步地球轨道(地理)空间环境的一部分。原位光学反射率测量在电子给料之前,期间和之后呈现。结果表明,一些测试材料的光谱分布随电子剂量的函数而变化。这些结果提供了一种实验基准,用于分析卫星系统的老化效应,可用于提高遥感和空间情境意识。它们还提供了对那些最有可能包含地球对轨道环境中的空间碎片的高面积质量比(HAMR)碎片的材料的初步分析。最后,本文提出的结果是用于模拟环境老化的航天器聚合物的模拟环境老化的概念证明,该概念应该通过较大的航天器材料的较大的子集来导致更多的实验。

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