中国空间科学技术 ›› 2025, Vol. 45 ›› Issue (1): 99-112.doi: 10.16708/j.cnki.1000-758X.2025.0010

• 综述 • 上一篇    

针对分布式多热源的两相回路技术研究发展现状

毕涵礼,贾志超,李国广,吴琪,刘畅,张红星*,苗建印   

  1. 北京空间飞行器总体设计部 航天器热控全国重点实验室,北京100094
  • 收稿日期:2023-10-08 修回日期:2023-12-05 录用日期:2023-12-30 发布日期:2025-01-23 出版日期:2025-02-01

Review of two-phase loop technology for distributed multi-heat sources

BI Hanli,JIA Zhichao,LI Guoguang,WU Qi,LIU Chang,ZHANG Hongxing*,MIAO Jianyin   

  1. National Key Laboratory of Spacecraft Thermal Control, Beijing Institute of Spacecraft System Engineering, 
    Beijing 100094, China
  • Received:2023-10-08 Revision received:2023-12-05 Accepted:2023-12-30 Online:2025-01-23 Published:2025-02-01

摘要: 随着空间技术发展,航天器载荷集成化程度不断提高,热控系统须对分布式、多器件的热量进行收集与排散,确保器件之间的温度一致性。此外,航天器载荷功能性能增强,须推进多载荷与平台的一体化热设计。因此,须建立针对分布式多热源的有效热收集、传输与排散方法。首先,对三种单驱动两相回路的研究现状进行了调研,单驱动模式在解决多热源散热问题时存在低干度限制、蒸发器数量限制和流量分配不均等问题,因此难以满足多热源散热需求。随后,调研了针对分布式多热源的两种双驱动两相回路技术的研究现状,总结了其技术优势。受到植物输运散热系统的启发,大树是在树根渗透压和树叶毛细力的共同作用下进行稳定的供液和散热,提出了多蒸发器“渗透压+毛细力”双驱动两相回路系统,分析了其优势:利用渗透压可提升环路热管的循环驱动力,改善系统运行稳定性、实现多个热源间流量自适应调节和消除低干度限制。最后,进行了总结及给出了未来研究建议。

关键词: 分布式多热源, 高热流, 两相回路, 空间热控, 双驱动

Abstract: With the advancement of space technology, the integration level of spacecraft payloads continues to increase. Thermal control systems are required to collect and dissipate heat from distributed and multi-component sources to ensure temperature uniformity among devices. Additionally, as the functionality and performance of spacecraft payloads improve, it is necessary to advance the integrated thermal design of multiple heat payloads and platforms. Therefore, effective methods for heat collection, transfer, and dissipation tailored to distributed, multi-heat-source systems must be developed. This study begins by investigating the current research on three types of single-driven two-phase loops. Single-driven systems face challenges such as low quality limits, restrictions on the number of evaporators, and uneven flow distribution, making them inadequate for addressing the demands of multi-heat-source cooling. Subsequently, the research status of two dual-driven two-phase loop technologies for distributed multi-heat-source systems is reviewed, summarizing their technical advantages. Inspired by the heat transport and dissipation mechanisms in plants, where large trees achieve stable liquid supply and heat dissipation through the combined action of two driving forces, a dual-driven two-phase loop technology based on "osmotic pressure + capillary force" is proposed. Its advantages include enhancing the circulation driving force of the loop heat pipe through osmotic pressure, improving system stability, enabling self-adaptive flow regulation among multiple heat sources, and eliminating low quality limitations. Finally, the study provides a summary and recommendations for future research directions.

Key words: multiple heat sources, high heat flux, two-phase loop, space thermal control, double-drive