Experimental study on thermal performance of a long-distance helium two-phase closed thermosyphon

IF 1.8 3区 工程技术 Q3 PHYSICS, APPLIED
Rongjian Li , Xiaoyu Cui , Zhenhua Jiang , Chen Liu , Zhe Yan
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Abstract

Long-distance helium two-phase closed thermosyphons (TPCT) have significant potential for cooling superconducting magnets due to their simple structure and low thermal resistance. In this work, a helium TPCT is designed and fabricated with a vertical heat transfer distance of 860 mm. Experiments on helium TPCT are conducted with variations in heat power (0 – 1.3 W) and filling ratios (9.1% – 72.8%). Results demonstrate that the filling of helium can accelerate the cooling rate of thermosyphon. The heat transfer limit of the helium TPCT initially increases and then decreases as the filling ratio is increased. Two different heat transfer limit modes can be recognized: the dry-out limit, which emerges in the low to medium filling ratio (9.1% – 41.1%), and the boiling limit, which emerges in the high filling ratio (50.4% – 72.8%). The temperature and pressure characteristics exhibit significant differences between these two heat transfer limit modes. As the heat power increases, the total thermal resistance of the helium TPCT shows a downward trend. However, once the heat power exceeds the heat transfer limit, the thermal resistance increases sharply. The designed helium TPCT exhibits optimal thermal performance at a filling ratio of 50.4%, with a heat transfer limit of 1.15 W, a thermal resistance is approximately 0.18 K∙W−1, and an effective thermal conductivity is approximately 23,800 W∙m−1∙K−1, demonstrating the superiority of TPCT for cooling superconducting magnets. The heat transport mechanisms revealed in the present study are expected to contribute to the design of high-efficiency helium heat pipes and facilitate their engineering applications.
远距离氦两相闭式热虹吸管热性能实验研究
长距离氦两相封闭热虹吸管(TPCT)结构简单,热阻低,在超导磁体冷却方面具有重要的应用前景。本文设计并制作了一个垂直传热距离为860 mm的氦气TPCT。在热功率(0 ~ 1.3 W)和填充率(9.1% ~ 72.8%)的变化条件下,对氦气TPCT进行了实验。结果表明,充入氦气可以加快热虹吸管的冷却速度。随着填充率的增加,氦气TPCT的传热极限先增大后减小。可以识别出两种不同的传热极限模式,即在低填充比(9.1% ~ 41.1%)时出现的干燥极限和在高填充比(50.4% ~ 72.8%)时出现的沸腾极限。温度和压力特性在这两种传热极限模式之间表现出显著差异。随着热功率的增大,氦TPCT的总热阻呈下降趋势。然而,一旦热功率超过传热极限,热阻急剧增加。设计的氦TPCT在填充率为50.4%时表现出最佳的热性能,传热极限为1.15 W,热阻约为0.18 K∙W−1,有效导热系数约为23,800 W∙m−1∙K−1,显示了TPCT冷却超导磁体的优越性。研究结果为高效氦热管的设计和工程应用提供了理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Cryogenics
Cryogenics 物理-热力学
CiteScore
3.80
自引率
9.50%
发文量
0
审稿时长
2.1 months
期刊介绍: Cryogenics is the world''s leading journal focusing on all aspects of cryoengineering and cryogenics. Papers published in Cryogenics cover a wide variety of subjects in low temperature engineering and research. Among the areas covered are: - Applications of superconductivity: magnets, electronics, devices - Superconductors and their properties - Properties of materials: metals, alloys, composites, polymers, insulations - New applications of cryogenic technology to processes, devices, machinery - Refrigeration and liquefaction technology - Thermodynamics - Fluid properties and fluid mechanics - Heat transfer - Thermometry and measurement science - Cryogenics in medicine - Cryoelectronics
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