首页> 外文期刊>International Journal of Heat and Mass Transfer >Investigation of a gravity-immune chip-level spray cooling for thermal protection of laser-based wireless power transmission system
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Investigation of a gravity-immune chip-level spray cooling for thermal protection of laser-based wireless power transmission system

机译:基于重力的芯片级喷雾冷却技术对基于激光的无线电力传输系统的热保护的研究

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摘要

Aiming to enhance the on-board thermal protection platform for the space laser-based wireless power transmission (WPT) system which is essential for the development of distributed space systems, an improved gravity-immune closed-loop spray cooling system with an ejector loop is proposed in this paper. The gravity-immunity features its design of the novel fluidic loop, uncovering the reliability of the future in-orbit test and potential of the practical deployment of the spacecraft thermal management. The biggest innovation of the fluidic loop lies in the integration of the spray cooling loop and an ejector loop which is to create a local low pressure area without any rotary mechanical components for the purpose of consistently removing the liquid-vapor mixture from a relatively high pressure in the spray chamber guaranteeing a relatively high operation efficiency. Ground-based experimental set-up was established to test the feasibility of the system's operation mechanism, based on which thermal tests were organized to study the practical heat dissipation capability in both continuous and periodic operating tasks. The largest critical heat flux (CHF) could go or be up to 705 W/cm~2 and optimal efficiency at CHF was calculated to be 9.34% in the continuous mode. Additionally, nozzle inlet temperature with high subcooling degree is preferred in the periodic mode.
机译:为了增强基于空间激光的无线电力传输(WPT)系统的机载热保护平台,该系统对于分布式空间系统的开发至关重要,是一种改进的带有喷射器回路的抗重力闭环喷雾冷却系统。本文提出。重力抗扰度以新颖的流体回路设计为特色,揭示了未来在轨测试的可靠性以及航天器热管理实际部署的潜力。流体回路的最大创新在于喷雾冷却回路和喷射器回路的集成,该喷射器回路可在没有任何旋转机械组件的情况下创建局部低压区域,以便始终如一地从相对较高的压力中除去液气混合物。雾化室中的雾化器保证了较高的工作效率。建立了基于地面的实验装置,以测试系统运行机制的可行性,在此基础上组织了热测试,以研究连续和定期运行任务中的实际散热能力。最大临界热通量(CHF)可以达到或高达705 W / cm〜2,在连续模式下,CHF的最佳效率经计算为9.34%。另外,在周期性模式中,优选过冷却度高的喷嘴入口温度。

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