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Evolutionary Optimization of Electronic Circuitry Cooling Using Nanofluid

机译:使用纳米流体的电子电路冷却的进化优化

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摘要

Liquid cooling electronics using microchannels integrated in the chips is an attractive alternative to bulky aluminum heat sinks. Cooling can be further enhanced using nanofluids. The goals of this study are to evaluate heat transfer in a nanofluid heat sink with developing laminar flow forced convection, taking into account the pumping power penalty. The proposed model uses semi-empirical correlations to calculate effective nanofluid thermophysical properties, which are then incorporated into heat transfer and friction factor correlations in literature for single-phase flows. The model predicts the thermal resistance and pumping power as a function of four design variables that include the channel diameter, velocity, number of channels, and nanoparticle fraction. The parameters are optimized with minimum thermal resistance as the objective function and fixed specified value of pumping power as the constraint. For a given value of pumping power, the benefit of nanoparticle addition is evaluated by independently optimizing the heat sink, first with nanofluid and then with water. Comparing the minimized thermal resistances revealed only a small benefit since nanoparticle addition increases the pumping power that can alternately be diverted towards an increased velocity in a pure water heat sink. The benefit further diminishes with increase in available pumping power.
机译:使用集成在芯片中的微通道的液体冷却电子器件是笨重的铝散热器的一种有吸引力的替代方案。使用纳米流体可以进一步增强冷却。这项研究的目的是评估考虑到泵浦功率损失的层流强迫对流情况下纳米流体散热器中的热传递。提出的模型使用半经验相关性来计算有效的纳米流体热物理性质,然后将其纳入文献中单相流的传热和摩擦系数相关性中。该模型根据四个设计变量来预测热阻和泵浦功率,这四个设计变量包括通道直径,速度,通道数量和纳米颗粒分数。优化参数时,以最小的热阻为目标函数,以固定的额定泵浦功率值为约束。对于给定的泵浦功率值,通过独立优化散热器(首先使用纳米流体,然后用水)来评估纳米颗粒添加的好处。比较最小的热阻仅显示出很小的好处,因为添加纳米颗粒会增加泵浦功率,而泵浦功率可以交替地转向纯水散热器中的增加的速度。随着可用泵浦功率的增加,该好处进一步减少。

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    Mital Manu;

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  • 年度 2012
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