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首页> 外文期刊>International Journal of Thermal Sciences >Experimental and analytical study of a loop heat pipe at a positive elevation using neutron radiography
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Experimental and analytical study of a loop heat pipe at a positive elevation using neutron radiography

机译:中子射线照相技术在正高程回路热管的实验和分析研究

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An experimental and analytical study has been conducted of a loop heat pipe's steady state operating conditions at a positive elevation, which refers to when the condenser is higher than the evaporator. A unique trend of the steady state operating temperature as a function of evaporator heat load at a positive elevation was observed in the experimental data. A gravity-assisted operating theory was proposed and explained in detail. In addition, the proposed hypothesis was validated by neutron radiography, a non-destructive visualization tool. When the LHP is operated at a positive elevation, it can operate in the capillary-controlled mode, which means the system is driven by pressure gain from both surface tension and liquid head, or in the gravity-controlled mode, which means the system is driven only by the pressure gain from the liquid head. A pressure-temperature diagram illustrating the thermodynamic states of the circulating fluid was presented when the system is operating in a gravity-controlled mode. Experimental temperature data were presented for a loop heat pipe operating at 25.4, 76.2, and 127.0 mm positive elevations. Lastly, predicting results from an analytical model with the newly added features at a positive elevation were compared with the experimental results obtained at a 76.2 mm positive elevation. The model prediction and the experimental data agree well, which means the operating mechanisms were understood and captured in the model. This is the first study of a loop heat pipe focusing on a positive elevation, which unveils the unique temperature trend at low heat load operating conditions.
机译:已经对回路热管在正高度上的稳态运行条件进行了实验和分析研究,这是指冷凝器高于蒸发器的时间。在实验数据中,观察到稳态工作温度与蒸发器热负荷呈正相关关系的独特趋势。提出并介绍了重力辅助工作原理。此外,通过无损可视化工具中子射线照相法验证了提出的假设。当LHP正向运行时,它可以在毛细管控制模式下运行,这意味着系统由来自表面张力和液头的压力增益驱动,或者在重力控制模式下运行,这意味着系统处于仅由液头的压力增益驱动。当系统以重力控制模式运行时,提供了一个压力-温度图,该图说明了循环流体的热力学状态。给出了在25.4、76.2和127.0 mm正向运行的环形热管的实验温度数据。最后,将分析模型的预测结果与正向标高的新添加特征与在76.2 mm正向标高获得的实验结果进行了比较。模型预测与实验数据吻合良好,这意味着模型中已理解并捕获了操作机制。这是对以正高为重点的回路热管的首次研究,揭示了在低热负荷运行条件下的独特温度趋势。

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