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An experimental and numerical investigation of the use of liquid flow in serpentine microchannels for microelectronics cooling

机译:用于微电子冷却的蛇形微通道中液体流动的实验和数值研究

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摘要

This paper presents a combined experimental and numerical investigation of single-phase water flow and heat transfer in serpentine rectangular microchannels embedded in a heated copper block. The performance of four different microchannel heat sink (MCHS) configurations are investigated experimentally, the first having an array of straight rectangular microchannels (SRMs), while the other have single (SPSMs), double (DPSMs) and triple path multi-serpentine rectangular microchannels (TPSMs). Three-dimensional conjugate heat transfer models are developed for both laminar and turbulent single-phase water flows in each of these MCHSs and the governing flow and energy equations solved numerically using finite elements. The numerical predictions of pressure drop (∆P) and average Nusselt number (〖Nu〗_avg) are in good agreement with experimental data, and indicated that the single path serpentine microchannel (SPSM) leads to a 35% enhancement of the 〖Nu〗_avg at a volumetric flow rate of 0.5 l/min and a 19% reduction in total thermal resistance (R_th) compared to the conventional SRM heat sink. However, this enhancement is at the expense of a large (up to ten-fold) increase in ∆P compared to the SRM heat sink, so that a suitable compromise must be struck between heat transfer and pressure drop in practical MCHS designs.
机译:本文提出了结合在加热的铜块中的蛇形矩形微通道中单相水流和传热的组合实验和数值研究。通过实验研究了四种不同的微通道散热器(MCHS)配置的性能,第一种具有阵列的直矩形微通道(SRM),而另一种具有单通道(SPSM),双通道(DPSM)和三通道多蛇形矩形微通道(TPSM)。针对每个MCHS中的层流和湍流单相水流,开发了三维共轭传热模型,并使用有限元数值求解了控制流和能量方程。压降(ΔP)和平均Nusselt数(〖Nu〗_avg)的数值预测与实验数据吻合良好,并表明单路径蛇形微通道(SPSM)可使〖Nu〗提高35%。与传统的SRM散热器相比,体积流量为0.5 l / min时,平均热阻(R_th)降低了19%。但是,与SRM散热器相比,这种增强是以∆P大幅度增加(最多十倍)为代价的,因此在实际的MCHS设计中,必须在传热和压降之间做出适当的折衷。

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