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Experimental study on the double-evaporator thermosiphon for cooling HTS (high temperature superconductor) system

机译:双蒸发器热虹吸管冷却高温超导系统的实验研究

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A cryogenic thermosiphons is an efficient heat transfer device between a cryocooler and a thermal load that is to be cooled. This paper presents an idea of thermosiphon which contains two vertically-separated evaporators. This unique configuration of the thermosiphon is suitable for the purpose of cooling simultaneously two superconducting bearings of the HTS (high temperature superconducting) flywheel system at the same temperature. A so-called double-evaporator thermosiphon was designed, fabricated and tested using nitrogen as the working fluid under sub-atmospheric pressure condition. The interior thermal condition of the double-evaporator thermosiphon was examined in detail during its cool-down process according to the internal thermal states. The double-evaporator thermosiphon has operated successfully at steady-state operation under sub-atmospheric pressure. At the heat flow of 10.6 W, the total temperature difference of the thermosiphon was only 1.59 K and the temperature difference between the evaporators was 0.64 K. The temperature difference of two evaporators is attributed to the conductive thermal resistance of the adiabatic section between the evaporators. The method to reduce this temperature difference has been investigated and presented in this paper. The proper area selection of condenser, evaporator 1, and evaporator 2 was studied by using thermal resistance model to optimize the performance of a thermosiphon. The superior heat transfer characteristic of the double-evaporator thermosiphon without involving any cryogenic pump can be a great potential advantage for cooling HTS bulk modules that are separated vertically.
机译:低温热虹吸管是低温冷却器和要冷却的热负荷之间的有效传热设备。本文介绍了一种热虹吸管的概念,其中包含两个垂直分隔的蒸发器。热虹吸管的这种独特配置适用于在相同温度下同时冷却HTS(高温超导)飞轮系统的两个超导轴承的目的。在低于大气压的条件下,使用氮气作为工作流体,设计,制造和测试了一种所谓的双蒸发器热虹吸管。根据内部热状态,在冷却过程中详细检查了双蒸发器热虹吸管的内部热工状态。双蒸发器热虹吸管已在低于大气压的稳态下成功运行。在10.6 W的热流下,热虹吸管的总温差仅为1.59 K,蒸发器之间的温差为0.64K。两个蒸发器的温度差归因于蒸发器之间的绝热部分的导热热阻。本文研究并提出了减小这种温差的方法。通过使用热阻模型来优化热虹吸管的性能,研究了冷凝器,蒸发器1和蒸发器2的适当区域选择。在不使用任何低温泵的情况下,双蒸发器热虹吸管的出色传热特性可能是冷却垂直分离的HTS大模块的巨大潜在优势。

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