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Efficacy of hybrid nanofluid in a new microchannel heat sink equipped with both secondary channels and ribs

机译:杂交纳米流体在新的微通道散热器中的功效配备有二级通道和肋骨

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This paper aims to evaluate the thermohydraulic attributes of a hybrid nanofluid containing graphene-silver nanoparticles in a microchannel heat sink equipped with the ribs and secondary channels. In addition to the heat transfer surface increment, the ribs direct the flow towards the secondary channels, and intensify the flow mixing. Meanwhile, the secondary channels increase the flow area, which reduces the pressure drop due to the presence of the ribs. The results show that combining the three approaches, namely employing the nanofluid, ribs and secondary channels in the microchannel improves the heat sink performance significantly. With increasing either concentration or Reynolds number, the temperature decreases, the temperature uniformity enhances, and the regions with highest temperatures become smaller. Additionally, the average convective heat transfer coefficient enhances with increasing the concentration and Reynolds number such that with increase of the concentration from 0 to 0.1% at Re = 100, a 17% enhancement happens in the convective heat transfer coefficient. Moreover, the bottom surface temperature decreases with increment of the concentration such that a 3.42 K reduction occurs with increasing the concentration from 0 to 0.1% at Re = 100. Meanwhile, the flow experiences a greater pumping power at higher Reynolds numbers and concentrations. (C) 2018 Elsevier B.V. All rights reserved.
机译:本文旨在评估含有肋和二次通道的微通道散热器中含有石墨烯纳米粒子的杂种纳米流体纳米粒子的热液态属性。除了传热表面增量之外,肋条引导朝向二级通道的流动,并加强流动混合。同时,二次通道增加流量面积,这减少了由于肋的存在而降低压降。结果表明,组合三种方法,即使用微通道中的纳米流体,肋,肋和二次通道显着提高了散热器性能。随着浓度或雷诺数的增加,温度降低,温度均匀性增强,最高温度的区域变小。另外,平均对流传热系数随着浓度和雷诺数而增加,使得随着RE = 100的0%至0.1%的浓度的增加,对流传热系数发生17%的增强。此外,底表面温度随着浓度的增量而降低,使得在RE = 100时将浓度从0〜0.1%的浓度增加,发生3.42k减少。同时,流动在较高的雷诺数和浓度下经历更大的泵送电力。 (c)2018年elestvier b.v.保留所有权利。

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