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Numerical Simulation of Heat Transfer Enhancement in Periodic Converging-Diverging MicroChannel

机译:周期趋同微通道中传热增强的数值模拟

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Heat transfer performance and fluid flow in three-dimensional converging-diverging microchannel of circular cross-section are studied numerically. Three different types of microchannel, diameter 100 μm and length 6.125 mm each are used for simulation for the Reynolds number range of 50 to 1000. The effect of Reynolds Number, converging/diverging angle and converging-diverging cross-section length on pressure drop and heat transfer in proposed microchannels are investigated and discussed. The result indicated that the flow in the converging-diverging cross-section induces stronger recirculation and flow separation, which decreases with decreasing the converging and diverging angle and increases with increasing aspect ratio. However, the local and global heat transfer performances in the channels are improved by the converging-diverging cross-section at the expense of higher pressure drop compared to the straight channel with the same cross-section. Conversely, special attentions are given to analyze the thermal performance of microchannels through variation of thermal resistance with pumping power.
机译:在数值上研究了三维会聚分歧微通道中的传热性能和流体流动。三种不同类型的微通道,直径为100μm和长度为6.125 mm,用于雷诺数范围为50至1000的模拟。雷诺数,会聚/发散角和会聚横截面长度对压降的影响研究并讨论了所提出的微通道中的热传递。结果表明,会聚分歧横截面的流动诱导更强的再循环和流动分离,这随着降低的降低而降低,随着纵横比的增加而增加。然而,与具有相同横截面的直通道相比,通道中的局部和全局传热性能通过较高的压力下降而得到的局部横截面改善。相反,通过用泵送动力的热阻变化来分析微通道的热性能。

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