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Conceptual design of cryogenic system for the next-generation infraredspace telescope SPICA

机译:下一代红外低温系统的概念设计太空望远镜SPICA

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The conceptual design of the Space Infrared Telescope for Cosmology and Astrophysics (SPICA) has been studied as a pre-project of the Japan Aerospace Exploration Agency (JAXA) in collaboration with ESA to be launched in 2018. The SPICA is transferred into a halo orbit around the second Lagrangian point in the Sun-Earth system, where radiant cooling is available effectively. The SPICA has a large IR telescope 3 m in diameter, which is cooled without cryogen to below 6 K by the radiant and mechanical cooling system. Therefore, the SPICA mission will cover mid- and far-IR astronomy with high sensitivity and spatial resolution during a long period of over 5 years for goal. Most heat radiation from the sun and spacecraft is blocked by the Sun Shield and thermal radiation shields covered with Multi-Layer Insulator (MLI) to limit heat radiation to the Scientific Instrument Assembly (SIA). The SIA, which is composed of the primary mirrors and optical benches equipped with Focal Plane Instruments (FPIs), is refrigerated to below 6 K by two sets of 4K-class Joule-Thomson (JT) cooler with a cooling power of 40 mW at 4.5 K. The Far-IR detector is refrigerated to 1.7 K by two sets of lK-class JT coolers with a cooling power of 10 mW at 1.7 K. Improvements for the higher reliability and sufficient cooling performance are required in the development of SPICA mechanical cryocoolers. Thermal analysis indicates that the SPICA cryogenic system works effectively to limit the total heat load on the SIA to 41.2 mW. This paper describes the conceptual design of the SPICA cryogenic system, which was established with thermal feasibility for nominal operation mode.
机译:日本宇宙航空研究开发署(JAXA)与欧洲航天局(ESA)合作,已于2018年启动了宇宙空间和天体物理红外望远镜(SPICA)的概念设计研究。该SPICA已转移到晕圈轨道上围绕太阳地球系统中的第二个拉格朗日点,在该点可以有效利用辐射冷却。 SPICA拥有一个直径3 m的大型红外望远镜,通过辐射和机械冷却系统将其冷却至6 K以下,而无需使用冷冻剂。因此,SPICA任务将在5年以上的长期目标中以高灵敏度和空间分辨率覆盖中红外和远红外天文学。太阳和航天器发出的大部分热辐射被遮阳罩和覆盖有多层绝缘子(MLI)的热辐射罩阻挡,以限制向科学仪器组件(SIA)的辐射。 SIA由配备有焦平面仪器(FPI)的主镜和光学工作台组成,并通过两组4K级焦耳-汤姆森(JT)冷却器将其制冷至6 K以下,冷却功率为40 mW。 4.5K。两套LK级JT冷却器将Far-IR探测器制冷到1.7 K,在1.7 K时的冷却功率为10 mW。在SPICA机械装置的开发中,需要对更高的可靠性和足够的冷却性能进行改进低温冷却器。热分析表明,SPICA低温系统可以有效地将SIA上的总热负荷限制为41.2 mW。本文介绍了SPICA低温系统的概念设计,该系统的设计具有热可行性,适用于标称运行模式。

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