A novel thermal bus architecture for large cryogenic space telescopes utilizing helium pulsating heat pipes

IF 1.8 3区 工程技术 Q3 PHYSICS, APPLIED
Logan Kossel , John Pfotenhauer , Ali Kashani , Franklin Miller
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引用次数: 0

Abstract

Future space telescopes, such as those proposed for the Far-infrared Surveyor Mission, are expected to employ actively cooled optical arrays with a similar overall surface area compared to the James Webb Space Telescope. Therefore, there is a need for a cryogenic cooling system with a thermal bus architecture that can distribute cooling to these large optical arrays. Recent experimental research of helium Pulsating Heat Pipes (PHPs) has shown that helium PHPs can transfer heat over long distances (on the order of 2 m) with high efficiency, and also have the ability to act as a passive thermal switch upon the removal of the cooling source. PHPs’ high thermal performance, passive switching capability, low mass, and ease of manufacturing make them an appealing option compared to high-purity metal straps for a thermal bus architecture on large cryogenic space telescopes. A novel architecture for the thermal control of optical arrays is proposed utilizing unique configurations of helium pulsating heat pipes that minimize mass, maximize thermal performance, and reduce the risk of mission failure.

利用氦脉动热管的大型低温空间望远镜新型热总线结构
与詹姆斯-韦伯太空望远镜相比,未来的太空望远镜(如为远红外巡天任务提议的望远镜)预计将采用主动冷却光学阵列,其总表面积与詹姆斯-韦伯太空望远镜类似。因此,需要一种具有热总线结构的低温冷却系统,能够为这些大型光学阵列分配冷却。最近对氦脉动热管(PHPs)的实验研究表明,氦脉动热管可以远距离(约 2 米)高效传热,而且还能在冷源移除后充当被动热开关。PHPs 具有热性能高、被动开关能力强、质量小和易于制造等特点,因此,与高纯度金属带相比,PHPs 是大型低温太空望远镜热总线架构的一个极具吸引力的选择。本文提出了一种用于光学阵列热控制的新型结构,利用氦脉动热管的独特配置,最大限度地减少了质量,最大限度地提高了热性能,降低了任务失败的风险。
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来源期刊
Cryogenics
Cryogenics 物理-热力学
CiteScore
3.80
自引率
9.50%
发文量
0
审稿时长
2.1 months
期刊介绍: Cryogenics is the world''s leading journal focusing on all aspects of cryoengineering and cryogenics. Papers published in Cryogenics cover a wide variety of subjects in low temperature engineering and research. Among the areas covered are: - Applications of superconductivity: magnets, electronics, devices - Superconductors and their properties - Properties of materials: metals, alloys, composites, polymers, insulations - New applications of cryogenic technology to processes, devices, machinery - Refrigeration and liquefaction technology - Thermodynamics - Fluid properties and fluid mechanics - Heat transfer - Thermometry and measurement science - Cryogenics in medicine - Cryoelectronics
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