黄龙, 王雨娇. 负压环境对喷雾冷却传热性能影响实验研究[J]. 航天器环境工程, 2024, 41(2): 195-203 DOI: 10.12126/see.2023080
引用本文: 黄龙, 王雨娇. 负压环境对喷雾冷却传热性能影响实验研究[J]. 航天器环境工程, 2024, 41(2): 195-203 DOI: 10.12126/see.2023080
HUANG L, WANG Y J. Experimental study on the influence of negative pressure environment on heat transfer performance of spray cooling[J]. Spacecraft Environment Engineering, 2024, 41(2): 195-203 DOI: 10.12126/see.2023080
Citation: HUANG L, WANG Y J. Experimental study on the influence of negative pressure environment on heat transfer performance of spray cooling[J]. Spacecraft Environment Engineering, 2024, 41(2): 195-203 DOI: 10.12126/see.2023080

负压环境对喷雾冷却传热性能影响实验研究

Experimental study on the influence of negative pressure environment on heat transfer performance of spray cooling

  • 摘要: 为研究喷雾冷却实验系统在负压环境下的传热性能,搭建了一套以水为工质的闭式喷雾冷却系统,测试计算得到不同压力环境下表征系统传热能力的散热表面热流密度、传热系数及温度。结果表明:喷雾流量为0.45 L/min时热流密度及传热系数随喷雾腔内压力的降低呈增大趋势,当腔内压力降低至20 kPa时传热系数较常压下增加了95.2%;当喷雾流量为0.25 L/min时,随喷雾腔内压力的降低,热流密度及传热系数先增加后减小;当加热功率从100 W增加至1200 W时,热流密度及传热系数均随着腔内压力的降低而大幅增加,但适用热工况范围逐渐缩小;负压环境较常压环境下散热表面温度均匀性更差。研究结果可为喷雾冷却技术在航天器上的实际工程应用提供参考。

     

    Abstract: In order to study the heat transfer performance of the spray cooling system under negative pressure environment, a set of closed spray cooling system with water as the working medium was built. The heat flux, heat transfer coefficient, and temperature of the cooling surface, which characterize the heat transfer capability of the system under different pressures, were calculated and tested. The results show that, when the spray flow rate is 0.45 L/min, both heat flux and heat transfer coefficient increase with the decrease of the pressure in the spray chamber. When the pressure in chamber drops to 20 kPa, the heat transfer coefficient increases by 95.2% compared with that at atmospheric pressure. However, when the spray flow rate comes to 0.25 L/min, both heat flux and heat transfer coefficient first increase and then decrease with the decrease of the pressure in the spray chamber. As the heating power increases from 100 W to 1200 W, both heat flux and heat transfer coefficient increase significantly with the decrease of chamber pressure, whereas the applicable thermal conditions gradually narrow down. The surface temperature uniformity in low-pressure environments is worse than that in atmospheric environments. The proposed research may provide a reference for the application of spray cooling technology on spacecraft.

     

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