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Heating and cooling capacity of phase change material coupled with screen mesh wick heat pipe for thermal energy storage applications

机译:相变材料的加热和冷却能力与筛网网芯热管相结合,用于热能储存应用

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The thermal performance of a phase change material (PCM) heat pipe system is experimentally analysed using acetone as heat pipe fluid in a heat load range of 10-50 W at different flow rates of the condenser coolant. The evaporator of the heat pipe is enclosed in a chamber which filled with a PCM or water. Heat inputs are applied at the evaporator of the heat pipe through the PCM or water. In this study, the heat retention as well as cooling time of the PCM-water are estimated at different heat loads and flow rates of condenser coolant. Similarly, the thermal resistance, evaporator and condenser heat transfer coefficients are also estimated at different heat loads. It is observed that the PCM takes more time during heating and cooling cycles to reach the steady-state temperatures and the temperature values reached during heating are also higher for PCM compared to water. The use of PCM enhances the thermal storage capacity and shows a maximum enhancement of 200% in heat retention time compared to water at 50 W. Moreover, a maximum enhancement of 63.6% is observed in the steady-state temperature of the PCM compared to water. Similarly thermal resistance, evaporator wall temperature and heat transfer coefficients of the heat pipe also vary for PCM and water. The experimental results indicate that PCM or water can be used in this combined system depending upon requirement of thermal storage or electronics cooling.
机译:通过丙酮作为热管流体在电容器冷却剂的不同流速的热负荷范围内以10-50W的热负荷范围进行实验分析相变材料(PCM)热管系统的热性能。热管的蒸发器封闭在填充有PCM或水的腔室中。热输入通过PCM或水在热管的蒸发器处施加。在该研究中,在不同的热载荷和冷凝器冷却剂的流速下估计PCM-水的热保持以及冷却时间。类似地,在不同的热负荷下也估计热阻,蒸发器和冷凝器传热系数。观察到PCM在加热期间需要更多时间和冷却循环以达到稳态温度,并且与水相比,PCM的加热期间达到的温度值也更高。使用PCM增强了热储存容量,与50W的水相比,在热保留时间中显示出200%的最大增强。此外,与水相比,在PCM的稳态温度下观察到63.6%的最大增强。类似地,热管的蒸发器壁温和传热系数也因PCM和水而变化。实验结果表明,根据热储存或电子冷却的要求,可以在该组合系统中使用PCM或水。

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