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Experimental investigation on thermosyphon aid phase change material heat exchanger for electronic cooling applications

机译:热烃助剂相变材料热交换器电子冷却应用的实验研究

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摘要

In this work, cooling of electronic modules is experimentally investigated using a thermosyphon aid phase change material (PCM) heat exchanger with different thermic fluids such as n-hexane, benzene and DI water respectively. The experiments are conducted simultaneously by evaluating the thermal performance of thermic fluids and heat power stored by PCM for various heat inputs ranging from 70 to 110 W. At high heat input conditions, the value of low thermal resistance, maximum convective heat transfer coefficient (CHTC) and percentage of heat extraction of n-hexane are 0.350 K/W, 185.53 W/m(2)K and 99.2% respectively. Low enthalpy of vapourization and a high degree of superheat is the criteria for the obtained results. Also, temperature variation in PCM during melting is analysed by the influence of vapourized thermic fluids for different heat inputs. The maximum heat power stored by PCM is found as 7.78 W for vapourized n-hexane at 110 W due to high mass flow rate and less time for reaching steady-state temperature (SST) of PCM. The solidification of PCM is noted using cold water at regular time intervals during power-off conditions and observed that n-hexane influenced molten PCM takes 25 min for complete solidification.
机译:在这项工作中,使用具有不同热流体的热循环助剂相变材料(PCM)热交换器,例如分别具有不同的热流体,例如N-己烷,苯和DI水,实验研究了电子模块的冷却。通过评估PCM的热流体的热性能同时进行实验,用于PCM的各种热量输入的热量,用于在高热输入条件下,低热电阻值,最大的对流传热系数(CHTC )的N-己烷的热萃取百分比分别为0.350k / w,185.53w / m(2)k和99.2%。低蒸质焓和高度过热是所得结果的标准。而且,通过对不同热输入的耐湿热流体的影响分析了熔融期间PCM的温度变化。由于高质量流速和较少的时间,PCM存储的最大热功率为7.78W,在110W时,在110W下蒸发的N-己烷效果较少,以达到PCM的稳态温度(SST)。在断电条件下以规则的时间间隔使用冷水来注意PCM的凝固,并观察到N-己烷影响的熔融PCM需要25分钟以进行完全凝固。

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