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Parametric study on thermal and hydraulic characteristics of laminar flow in microchannel heat sink with fan-shaped ribs on sidewalls - Part 3: Performance evaluation

机译:侧壁带扇形肋的微通道散热器层流热和水力特性的参数研究第3部分:性能评估

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In order to comprehensively assess the performance of microchannel heat sink with fan-shaped ribs on sidewalls, this third part of a three-part study focuses on the relationship between thermal resistance and pumping power, and further the entropy generation rate and performance evaluation criteria, with water and silicon used as fluid and solid for the computational domain. The microchannel has the width of 0.1 mm and depth of 0.2 mm in the constant cross-section region. The geometric parameters include the width (0.05-0.4 mm), height (0.005-0.025 mm) and spacing (0.2-5 mm) of aligned or offset fan-shaped ribs. For deep insight into the basic mechanisms and properties of such heat sinks, the entropy generation rate due to heat transfer and fluid friction are separately studied. Results show that the fan-shaped ribs can lead to better comprehensive performance and the geometric parameters of fan-shaped ribs have a significant influence on the performance of such microchannel heat sinks. With the increase of the rib's height, the microchannel heat sinks with offset fan-shaped ribs gradually perform better than the ones with aligned fan-shaped ribs. With the decrease of the rib's spacing, the comprehensive performance firstly becomes better and then gradually deteriorates. For the microchannel heat sink with large rib's height and small rib's spacing, the increase of Reynolds number can lead to tremendously increase of entropy generation rate due to fluid friction, which can withdraw the decrease of entropy generation rate due to heat transfer and lead to the increase of total entropy generation rate, making the comprehensive performance worse than the smooth one. For Reynolds number ranging from 187 to 715 and studied geometric parameters, the best microchannel heat sink shows a 32% decrease in entropy generation rate and 1.33 in performance evaluation criteria, comparing with the smooth one.
机译:为了全面评估侧壁上带有扇形肋的微通道散热器的性能,此三部分研究的第三部分重点研究了热阻与泵浦功率之间的关系,以及熵产生率和性能评估标准,在计算领域中,水和硅用作流体和固体。在恒定横截面区域中,微通道的宽度为0.1毫米,深度为0.2毫米。几何参数包括对齐或偏移的扇形肋的宽度(0.05-0.4毫米),高度(0.005-0.025毫米)和间距(0.2-5毫米)。为了深入了解此类散热器的基本机理和性能,分别研究了由于热传递和流体摩擦而产生的熵产生率。结果表明,扇形肋可以带来更好的综合性能,并且扇形肋的几何参数对这种微通道散热器的性能具有重要影响。随着肋骨高度的增加,带有偏置扇形肋骨的微通道散热器的性能逐渐好于带有对齐扇形肋骨的微通道散热器。随着肋骨间距的减小,综合性能首先变好,然后逐渐下降。对于肋高大,肋间距小的微通道散热器,由于流体的摩擦,雷诺数的增加会导致熵产生率的极大增加,从而可以抵消因传热引起的熵产生率的下降,从而导致总熵产生率的增加,使综合性能不及平稳性能。对于雷诺数在187至715之间的范围并研究了几何参数,与光滑的散热器相比,最佳的微通道散热器的熵产生率降低32%,性能评估标准降低1.33。

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