为Hēki任务的超导磁体提供能量的空间磁通泵的设计和初步测试结果

IF 5.6 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
B.P.P. Mallett , J. Clarke , T. Endo , M. Goddard-Winchester , C. Shellard , J. Olatunji , R.A. Badcock , R. Pollock
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引用次数: 0

摘要

尽管至少从20世纪70年代开始,人们就一再提出在太空中使用超导磁体,但实际应用的例子仍然很少。其中一项技术挑战是在航天器上保持合适的低温。这一挑战可以通过使用磁通泵来减轻,以减少为超导磁体通电所需的低温冷却功率。本文介绍了磁通量泵的设计和初步试验结果,以满足Hēki任务的要求,该任务将在国际空间站的外部平台上运行高温超导磁体。磁通泵采用了基于变压器的自整流结构。有效电路模型用于电磁特性设计,有限元模型用于机械和热设计。液氮试验表明,该泵的电气性能满足要求。使用类似飞行的硬件和软件副本进行了更高保真度的测试,并验证了热建模。这些测试还包括通量泵在传导冷却环境下连续运行100多小时,这反映了该技术的内在可靠性。虽然进一步的测试和飞行鉴定仍有待完成,但我们预计该通量泵技术将于2025年4月进行在轨演示。这样的演示将标志着这种新兴的超导技术在太空和地面应用上的成熟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design and initial test results of a space-bound flux pump to energize the Hēki mission’s superconducting magnet
Despite repeated proposals to utilize superconducting magnets in space since at least the 1970s, examples of their use remain scant. One of the technical challenges is to maintain suitable cryogenic temperatures on a spacecraft. This challenge can be alleviated by the use of flux pumps to reduce the required cryogenic cooling power needed to energize the superconducting magnet. This paper describes the design and initial test results of the flux pump to fulfill the requirements of the Hēki mission that will operate a high-temperature superconducting magnet on an external platform of the International Space Station. A transformer-based, self-rectifier architecture was chosen for the flux pump. An effective circuit model used to design its electromagnetic properties and finite-element modelling used in its mechanical and thermal design. Liquid nitrogen tests were used to demonstrate that the electrical performance of the flux pump meets requirements. Higher-fidelity tests using flight-like copies of the hardware and software were undertaken and validated the thermal modelling. These tests also featured the continuous operation of the flux pump in a conduction-cooled setting for over 100 h, reflecting an inherent reliability of this technology. Whilst further testing and flight qualification remains to be completed, we anticipate an on-orbit demonstration of this flux pump technology in April 2025. Such a demonstration will signal a maturing of this emerging superconducting technology for both in-space and terrestrial applications.
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CiteScore
3.90
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