改进空间运输用先进低温火箭发动机蓄热式冷却技术

A. P. Baiju, N. Jayan, G. Nageswaran, M. S. Suresh, V. Narayanan
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引用次数: 5

摘要

推力室再生冷却是低温火箭发动机燃烧室内产生的高热通量热管理的独特解决方案。热量通过内铜壳上的通道从燃烧热气体传递到冷却剂,从而冷却喷嘴的内壁。在通道内提供铜泡沫的新技术将充当无限翅片,也充当冷却剂分层的屏障。这将改善到冷却液的热传递,并降低喷嘴壁温度。通过模拟流体的实验证明了铜泡沫插入件对冷却剂通道的传热改善。实验采用模拟热气室和以水为冷却剂的冷却剂通道进行。选择具有高孔隙率的铜泡沫填充通道。使用填充有泡沫铜的冷却液通道进行热测试,并测量通道上的冷却液温升和压降。在类似的热气条件下重复测试,但不在通道内插入铜泡沫。通过铜泡沫插入物实验,观察到向冷却剂的热传递显著增强,这将降低壁温。这为未来太空运输系统的多启动低温发动机的生命周期改进提供了一个很好的途径。本文详细介绍了泡沫铜的规格、硬件设计、实验和测量,以及提高传热系数在低温发动机运行中的应用。
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A Technology for Improving Regenerative Cooling in Advanced Cryogenic Rocket Engines for Space Transportation

Regenerative cooling of thrust chamber is the unique solution for the thermal management of high heat flux generated inside the combustion chamber of Cryogenic rocket engine. Heat is transferred from combustion hot gas to coolant through the channels provided on inner copper shell, thereby cools the inner wall of the nozzle. A novel technique of providing copper foam inside the channels will act as an infinite fin and also act as barrier for coolant stratification. This will improve the heat transfer to the coolant and reduce the nozzle wall temperature. Heat transfer improvement with copper foam inserts to the coolant channel is demonstrated through experiments with simulated fluids. Experiments are conducted with simulated hot gas chamber and coolant channels using water as the coolant. Copper foam with high porosity is selected to fill the channels. Hot tests are carried out with copper foam filled coolant channels and measured the coolant temperature rise and pressure drop across the channels. Tests are repeated with similar hot gas condition, but without inserting copper foam inside the channels. A substantial enhancement in heat transfer to the coolant is observed with copper foam inserts experiments, which will reduce the wall temperature. This gives a good handle on the life cycle improvement of multi-start cryogenic engines for future space transportation systems. This paper details the specification of copper foam, hardware design, experiments and measurements, and the application of the augmentation of heat transfer coefficient in operating cryogenic engines.

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