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Arcjet Testing of Micro-Meteoroid Impacted Thermal Protection Materials

机译:微流星撞击热保护材料的Arcjet测试

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There are several harsh space environments that could affect thermal protection systems and in turn pose risks to the atmospheric entry vehicles. These environments include micrometeoroid impact, extreme cold temperatures, and ionizing radiation during deep space cruise, all followed by atmospheric entry heating. To mitigate these risks, different thermal protection material samples were subjected to multiple tests, including hyper velocity impact, cold soak, irradiation, and arcjet testing, at various NASA facilities that simulated these environments. The materials included a variety of honeycomb packed ablative materials as well as carbon-based non-ablative thermal protection systems. The present paper describes the results of the multiple test campaign with a focus on arcjet testing of thermal protection materials. The tests showed promising results for ablative materials. However, the carbon-based non-ablative system presented some concerns regarding the potential risks to an entry vehicle. This study provides valuable information regarding the capability of various thermal protection materials to withstand harsh space environments, which is critical to sample return and planetary entry missions.
机译:有几种恶劣的太空环境可能会影响热保护系统,进而对进入大气层的车辆构成威胁。这些环境包括微流星体撞击,极端低温以及深空航行中的电离辐射,所有这些都伴随着大气进入加热。为了减轻这些风险,在模拟这些环境的各种NASA设施中,对不同的热保护材料样品进行了多种测试,包括超高速冲击,冷浸,辐射和电弧喷射测试。这些材料包括各种蜂窝填充的烧蚀材料以及碳基非烧蚀热保护系统。本文介绍了多重测试活动的结果,重点是热防护材料的电弧喷射测试。测试显示,烧蚀材料的结果令人鼓舞。但是,基于碳的非烧蚀系统引起了对进入车辆的潜在风险的一些担忧。这项研究提供了有关各种热防护材料承受恶劣空间环境的能力的宝贵信息,这对于样品返回和行星进入任务至关重要。

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