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ENHANCED HEAT TRANSFER THROUGH THE USE OF NANOFLUIDS IN FORCED CONVECTION

机译:通过在强制对流中使用纳米流体来增强传热

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摘要

Much attention has been paid in recent years to the use of nanoparticle suspensions for enhanced heat transfer. The majority of this work has focused on the thermal conductivity of these nanofluids, which can be as much as 2.5 times higher than that of the plain base fluid. The present work moves beyond measurements of non-flowing liquids, to explore the role that nanofluids can play in enhancing connective heat transfer within micro-scale channels. A unique pseudo-turbulent flow regime is postulated, which simulates turbulent behavior at very low Reynolds numbers, in what are nominally laminar flows. The resulting fluid mixing has the potential to raise the average convective heat transfer coefficient within the channel. Numerical modeling, using the lattice Boltzmann method, confirms the existence of the pseudo-turbulent flow regime. Finally, experimental results are presented which demonstrate a significant heat transfer enhancement when using nanofluids in forced convection. The current results are especially relevant to micmchannel heatsinks, where the low Reynolds numbers impose limitations on the maximum Nusselt number achievable.
机译:近年来,已经非常关注使用纳米颗粒悬浮液来增强热传递。这项工作的大部分集中在这些纳米流体的导热率上,该导热率可以是普通基础流体的导热率的2.5倍之多。当前的工作超出了非流动液体的测量范围,以探索纳米流体在增强微尺度通道内的结缔热传递中可以发挥的作用。假定有一个独特的伪湍流状态,该状态在名义层流中以非常低的雷诺数模拟湍流行为。产生的流体混合具有提高通道内平均对流传热系数的潜力。使用晶格玻尔兹曼方法的数值建模证实了伪湍流状态的存在。最后,提出了实验结果,表明在强制对流中使用纳米流体时,传热显着增强。当前结果与微通道散热器特别相关,其中低雷诺数对可达到的最大努塞尔数施加了限制。

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