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Numerical analysis on the liquid cooling of microchannel heatsink with phase change material

机译:微通道散热与相变材料的数值分析

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In this study, a microchannel heatsink with working fluid containing phase change material has been investigated numerically. The addition of phase change material in working fluid is to increase the heat transfer rate during cooling process. Commercial software ANSYS Fluent 15.0 is utilized to study the thermal resistance of the microchannel heatsink. Properties of working fluid with phase change material are with mass-averaged values. The numerical model for the phase change material used the latent heat as a function of heat capacity during phase change. This concept is modeled with user defined function in the simulation. The effects of microchannel geometry and the driven pressure difference between the entrance and exit of the heatsink on heat transfer performance are studied as well. The microchannel width varies in hundred micrometers with 2mm in height; the cross-sectional porosity of the fin array ranges from 0.6 to 0.7. Concentration of the phase change material in the working fluid is also a parameter in the investigation, ranging from 0% to 10%. The driven pressure difference of the working fluid is less than 30cm water head. The fin array covers an area of 1cm, and the power supply is 60W, such that the heat flux is 0.6MW/m.
机译:在该研究中,在数值上研究了具有含有相变材料的微通道散热器。在工作流体中加入相变材料是在冷却过程中增加传热速率。商业软件ANSYS流畅的15.0用于研究微通道散热器的热阻。具有相变材料的工作流体的性质具有质量平均值。相变材料的数值模型在相变期间使用潜热作为热容量的函数。此概念以模拟中的用户定义函数建模。研究了微通道几何形状的影响和散热器的入口和出口之间的驱动压力差异。微通道宽度在百米高的百分之一体中变化;翅片阵列的横截面孔隙率为0.6至0.7。工作流体中相变材料的浓度也是调查中的参数,范围为0%至10%。工作流体的驱动压力差异小于30cm水头。翅片阵列占地1cm,电源是60w,使得热通量为0.6mw / m。

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