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A Morphing Radiator for High-Turndown Thermal Control of Crewed Space Exploration Vehicles

机译:乘员散热器用于乘员空间探索飞行器的高量程热控制

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Spacecraft designed for missions beyond low earth orbit (LEO) face a difficult thermal control challenge, particularly in the case of crewed vehicles where the thermal control system (TCS) must maintain a relatively constant internal environment temperature despite a vastly varying external thermal environment and despite heat rejection needs that are contrary to the potential of the environment. A thermal control system may be required to reject a higher heat load to warm environments and a lower heat load to cold environments, necessitating a high turndown ratio. A modern thermal control system is capable of a turndown ratio on the order of 12:1, where crew safety and environment compatibility requirements lead to massive multi-loop fluid systems. This preliminary work for the first time discusses the analysis and prototype testing of a unique radiator design that employs the behavior of shape memory alloys (SMA) to vary the turndown of, and thus enable, a single-loop vehicle thermal control system for space exploration vehicles. This design, a morphing radiator, varies its shape in response to facesheet temperature to control view of space and primary surface emissivity. Because thermal-mechanical coupling is an inherent SMA behavior, the design requires no accommodation for control, instrumentation, nor power supply in order to operate. Thermal and radiation modeling of the morphing radiator predict a turndown ranging from 11.9:1 to 35:1 independent of TCS configuration. Stress and deformation analyses predict the desired morphing behavior of the concept. A system level mass analysis shows that by enabling a single loop architecture this design could reduce the TCS mass by -25%. The concept is demonstrated in proof-of-concept benchtop tests.
机译:专为在低地球轨道(LEO)以外的任务而设计的航天器面临着艰巨的热控制挑战,特别是在乘员飞行器中,尽管外部热环境千差万别,并且尽管排热需求与环境潜力背道而驰。可能需要一个热控制系统来拒绝较高的热负荷到温暖的环境,而降低较低的热负荷到寒冷的环境,这需要高的调节比。现代的热控制系统的调节比约为12:1,在这种情况下,机组人员的安全性和环境兼容性要求导致了大型多回路流体系统的出现。这项初步工作首次讨论了独特散热器设计的分析和原型测试,该散热器采用形状记忆合金(SMA)的行为来改变量程比,从而实现用于太空探索的单回路车辆热控制系统汽车。这种设计为变型辐射器,可根据面板温度改变其形状,以控制空间和主表面辐射率。由于热力机械耦合是SMA固有的特性,因此该设计无需控制,仪表和电源即可运行。变形散热器的热模型和辐射模型预测的调节比范围为11.9:1至35:1,与TCS配置无关。应力和变形分析可预测该概念所需的变形行为。系统级质量分析表明,通过启用单环体系结构,该设计可以将TCS质量降低-25%。该概念已在概念验证台式测试中得到了证明。

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