二硼化锆的热光学特性在 3 MeV 电子辐照下的抗扰性

Daniel Rønning, Yinglu Tang
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摘要

由于具有良好的导热性和抗热震性,二硼化锆(ZrB2)等超高温陶瓷已被研究为有望用于可重复使用热保护系统的材料,TPS 对航天器重返大气层和随后在太空中运行时的热平衡至关重要。因此,热性能和光学性能对此类应用尤为重要。同时,在太空中暴露于辐射会带来降低材料性能的风险,尤其是在长时间的飞行任务中。电子辐射(可在范艾伦外带找到)与 ZrB2 的相互作用以前从未研究过,因此被选为本研究的主要范围。研究使用了一个 3 MeV 的电子源,其辐射时间各不相同。研究了 ZrB2 的热光学特性对电子辐射通量增加的响应。ZrB2 样品通过火花等离子烧结制成烧结颗粒,然后暴露在 3 MeV 电子辐照下。对这些 ZrB2 样品在辐照前后的微观结构、热导率、热膨胀系数 (CTE)、发射率、吸收率和表面粗糙度进行了表征。结果发现,ZrB2 的热光学特性在这些通量下表现出很高的抗辐射能力,并且在辐照后没有观察到明显的微观结构变化。然而,辐照样品的表面粗糙度平均比未辐照样品低 29%,这可能是电子溅射造成的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Irradiation resistance of thermo-optical properties of zirconium diboride by 3 MeV electrons
Due to good thermal conductivity and thermal shock resistance, ultra-high temperature ceramics such as zirconium diboride (ZrB2) have been investigated as promising materials to be used in reusable thermal protection systems TPSs are vital to the heat balance of a spacecraft during atmospheric reentry and subsequent operation in space. Hence, the thermal and optical properties are especially critical for such applications. Meanwhile, radiation exposure in space can pose risks of degrading such material properties, especially over a prolonged mission duration. The interaction of electron radiation-which can be found in the outer Van Allen belt, with ZrB2 has not been studied previously and was chosen as the main scope of this study. An electron source of 3 MeV with different radiation exposure time was used. The response of thermo-optical properties of ZrB2 to increasing electron radiation fluences was investigated. ZrB2 samples were made through spark plasma sintering into sintered pellets and then exposed to 3 MeV electron irradiation. These ZrB2 samples were characterized by their microstructure, thermal conductivity, coefficient of thermal expansion (CTE), emittance, absorptivity, and surface roughness before and after irradiation. It was found that ZrB2’s thermo-optical properties showed high radiation resistance at these fluences, and no apparent microstructural change was observed after irradiation. However, the irradiated samples had, on average, a 29% lower surface roughness than the unirradiated samples, possibly originating from electron sputtering.
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