Computational Evaluation of Pulsating Heat Pipe for Fluid Flow Behavior and its Thermal Performance

Prakash Badu, Kushal Guragain, Durga Bastakoti
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Abstract

Computational fluid analysis of a single circuit heat pipe was undertaken to ascertain the thermal efficiency of water at various fill ratios, specifically 40%, 50%, and 60% under varying heating conditions. The analysis employed the ANSYS Fluent computational fluid dynamics software, utilizing a k-epsilon to the heat pipe as the solver. The analysis was carried out on a copper tube with an internal diameter measuring 3/16 inches. During the analysis, the thermal inflow at the adiabatic region was adjusted to zero, while the condenser region’s temperature remained constant at 25°C. Meanwhile, the heat input at the evaporator region was systematically adjusted to 105°C, 110°C, 115°C, and 120°C. Key Performance characteristics of heat pipe i.e. thermal resistance, and water volume fraction were evaluated during analysis. The temperature variations noted in both regions affirmed that the pulsating pipe’s performance was influenced by the phase transition between liquid and vapor. Furthermore, the concentration of volume within the evaporator section was monitored, confirming the presence of a dual-phase phenomenon within the heat pipe. Through the analysis, it was noted that the thermal resistance of the water is minimized at a 50% fill ratio for each level of heat input. Notably, the promising results were obtained at an input temperature of 120°C with a value of 1.025°C /W which was 7.3% and 9.8% lower than thermal resistance at 40% and 60% fill ratios, respectively. The reduced thermal resistance in this scenario is attributed to the flow dynamics within the capillary, propelled by rapid phase change mechanisms. This shows the importance of Pulsating Heat Pipes (PHPs) in thermal control, as well as the intricacies of their operating mechanisms. Experimental and theoretical investigations have investigated numerous elements influencing PHP performance, with numerical modeling providing insight into thermal resistance and water volume fraction dynamics under varying heating temperatures and fill ratios.
对脉动热管的流体流动特性及其热性能进行计算评估
对单循环热管进行了计算流体分析,以确定在不同的加热条件下,不同填充率(具体为 40%、50% 和 60%)下的水热效率。分析采用 ANSYS Fluent 计算流体动力学软件,利用热管的 k-epsilon 作为求解器。分析是在内径为 3/16 英寸的铜管上进行的。在分析过程中,绝热区域的热流入量被调整为零,而冷凝器区域的温度则保持在 25°C 不变。同时,蒸发器区域的热量输入被系统地调整为 105°C、110°C、115°C 和 120°C。在分析过程中,对热管的主要性能特征(即热阻和水体积分数)进行了评估。两个区域的温度变化证实,脉动热管的性能受到液体和蒸汽之间相变的影响。此外,对蒸发器部分的体积浓度进行了监测,证实了热管中存在双相现象。通过分析发现,在每一级热输入中,水的热阻在填充率为 50%时最小。值得注意的是,在输入温度为 120°C 时,结果令人满意,其值为 1.025°C /W,比填充率为 40% 和 60% 时的热阻分别低 7.3% 和 9.8%。这种情况下热阻的降低归因于毛细管内的流动动力学,由快速相变机制推动。这表明了脉动热管(PHP)在热控制中的重要性,以及其运行机制的复杂性。实验和理论研究调查了影响 PHP 性能的众多因素,并通过数值建模深入了解了不同加热温度和填充率下的热阻和水体积分数动态。
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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