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Thermohydraulic Performance of Heat Sink with Sinusoidal Microchannels Embedded with Pin-Fins for Liquid Cooling of Microelectronic Chips

机译:用于微电子芯片液体冷却的正弦微通道针翅式散热器的热工水力性能

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This article details the mathematical modeling of a heat sink employing sinusoidal microchannels, embedded with pin-fins, for purposes of liquid cooling of microelectronic chips. The performance of the heat sink is quantified in terms of thermal resistance and pumping power. Studies are done for Reynolds number varying from 250 to 1500. The thermal resistance decreases with increase in Reynolds number while the pumping power increases with increase in Reynolds number. The thermal resistance of the heat sinks with sinusoidal microchannel embedded with pin-fins is much smaller than that of heat sinks with straight microchannels as well as sinusoidal microchannels; however, the pumping power of the former is higher than the other two microchannels. For the cases studied, the reduction in thermal resistance of sinusoidal microchannels embedded with pin fins varied from 21% to 57% compared with that of straight microchannels. Studies revealed that changes in the diameter of pin fin and amplitude of sinusoidal microchannel have noticeable influence on thermal resistance at low Reynolds number but with increase in Reynolds number, the influence of diameter on thermal resistance waned. On the other hand, increase in diameter of the pin fin as well as increase in the amplitude and frequency of the sinusoidal microchannel increased the pumping power for all Reynolds number.
机译:本文详细介绍了用于微电子芯片液体冷却的正弦微通道散热片的数学模型。散热器的性能根据热阻和泵送功率进行量化。对雷诺数在250到1500之间进行了研究。热阻随雷诺数的增加而减小,泵送功率随雷诺数的增加而增加。与直微通道和正弦微通道相比,正弦微通道中嵌入针形翅片的散热器热阻要小得多;然而,前者的泵浦功率高于其他两种微通道。对于所研究的情况,与直微通道相比,嵌入针形翅片的正弦微通道的热阻降低幅度在21%到57%之间。研究表明,在低雷诺数下,针翅直径和正弦微通道振幅的变化对热阻有显著影响,但随着雷诺数的增加,直径对热阻的影响减弱。另一方面,针翅直径的增加以及正弦微通道振幅和频率的增加增加了所有雷诺数下的泵送功率。

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