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Composite Material Evaluation at Cryogenic Temperatures for Applications in Space-Based Far-Infrared Astronomical Instrumentation

机译:深空温度下的​​复合材料评估在天基远红外天文仪器中的应用

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Over half of the light incident on the Earth from the Universe falls within the Far-Infrared (FIR) region of the spectrum. Due to the deleterious effects of the Earth's atmosphere and instrument self-emission, astronomical measurements in the FIR require space-borne instrumentation operating at cryogenic temperatures. These instruments place stringent constraints on the mechanical and thermal properties of the support structures at low temperatures. With high stiffness, tensile strength, strength-to-mass ratio, and extremely low thermal conductivity, carbon fibre reinforced polymers (CFRPs) are an important material for aerospace and FIR astronomical applications, however, little is known about their properties at cryogenic temperatures. We have developed a test facility for exploring CFRP properties down to 4K. We present results from our ongoing study in which we compare and contrast the performance of CFRP samples using different materials, and multiple layup configurations. Current results include an evaluation of a cryostat dedicated for materials testing and a custom cryogenic metrology system, and preliminary cryogenic thermal expansion measurements. The goal of this research is to explore the feasibility of making CFRP-based, lightweight, cryogenic astronomical instruments.
机译:从宇宙入射到地球上的光有一半以上属于光谱的远红外(FIR)区域。由于地球大气的有害影响和仪器的自发射,FIR中的天文测量需要在低温下运行的星载仪器。这些仪器在低温下对支撑结构的机械和热性能施加了严格的限制。碳纤维增强聚合物(CFRP)具有高的刚度,拉伸强度,强度/质量比和极低的导热率,是用于航空航天和FIR天文应用的重要材料,但是,它们在低温下的性能知之甚少。我们开发了一种测试设备,用于探索低至4K的CFRP特性。我们提供了正在进行的研究的结果,其中我们比较和对比了使用不同材料和多种叠层配置的CFRP样品的性能。当前的结果包括评估专用于材料测试的低温恒温器和定制的低温计量系统,以及初步的低温热膨胀测量。这项研究的目的是探索制造基于CFRP的轻量级低温天文仪器的可行性。

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