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Resistance of CFRP structures to environmental degradation in low earth orbit.

机译:CFRP结构对低地球轨道环境退化的抵抗力。

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摘要

Within this study, a development of a protection strategy for ultra-thin CFRP structures from degrading effects of low Earth orbit (LEO) is presented. The proposed strategy involves an application of a modified epoxy resin system on outer layers of the structure, which is cycloaliphatic in its chemical character and reinforced with POSS nanoparticles. The core of the CFRP structure is manufactured using a highly aromatic epoxy resin system which provides excellent mechanical properties, however, its long-term ageing performance in space is not satisfactory, and hence a surface treatment is required to improve its longevity. ududThe developed resin system presented in this thesis is a hybrid material, designed in such a way that its individual constituents each contribute to combating the detrimental effects of radiation, atomic oxygen (AO), temperature extremes and vacuum induced outgassing of exposed material surfaces while operating in LEO. The cycloaliphatic nature of the outer epoxy increases UV resistance and the embedded silicon nanoparticles improve AO and thermal stability. udDuring the study, a material characterization of the developed cycloaliphatic epoxy resins was performed including the effects of nanoparticles on morphology, curing behaviour, thermal-mechanical properties and surface chemistry. Following on that, the efficacy of the modified resin system on space-like resistance was studied. It was found that when the ultra-thin CFRP structures are covered with the developed resin system, their AO resistance is approximately doubled, UV susceptibility decreased by 80% and thermal stability improved by 20%. ududFollowing on the successful launch of the InflateSail mission earlier this year, which demonstrated a sail deployment and a controlled de-orbiting, the findings of this study are of importance for the future generation of similar, but significantly longer missions. Ensuring resistance of CFRP structures in a highly corrosive LEO environment is a critical requirement to make their use in space applications truly feasible.
机译:在这项研究中,提出了一种针对超薄CFRP结构免受低地球轨道(LEO)降解影响的保护策略。拟议的策略涉及在结构的外层上应用改性环氧树脂体系,该体系的化学特性为脂环族,并用POSS纳米颗粒增强。 CFRP结构的芯是使用具有优异机械性能的高芳族环氧树脂体系制造的,但是,其在空间中的长期老化性能并不令人满意,因此需要进行表面处理以提高其使用寿命。 ud ud本论文中介绍的已开发的树脂系统是一种混合材料,其设计方式使得其各个成分均有助于抵抗辐射,原子氧(AO),极端温度和真空引起的暴露物质脱气的有害影响在LEO中操作时表面。外层环氧树脂的脂环族性质增加了抗紫外线性,并且嵌入的硅纳米颗粒改善了AO和热稳定性。在研究过程中,对已开发的脂环族环氧树脂进行了材料表征,包括纳米颗粒对形貌,固化性能,热机械性能和表面化学的影响。随后,研究了改性树脂体系对类空电阻的功效。发现当超薄的CFRP结构被开发的树脂体系覆盖时,它们的AO抵抗力大约增加了一倍,紫外线敏感性降低了80%,热稳定性提高了20%。 ud ud在今年早些时候成功发射了InflateSail任务之后,该任务证明了帆的展开和可控的离轨运动,这项研究的结果对于下一代类似但长得多的任务至关重要。确保CFRP结构在高腐蚀性LEO环境中的抵抗力是使其在太空应用中真正可行的关键要求。

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    Suliga Agnieszka;

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  • 年度 2017
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