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Parametric Study of Rarefaction Effects on Micro- and Nanoscale Thermal Flows in Porous Structures

机译:反射对多孔结构中微尺度和纳米尺度热流影响的参数研究

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摘要

Hydrodynamics and heat transfer in microlnano channels filled with porous media for different porosities and Knudsen numbers, Kn, ranging from 0.1 to 10, are considered. The performance of standard lattice Boltzmann method (LBM) is confined to the micro-scale flows with a Knudsen number less than 0.1. Therefore, by considering the rarefaction effect on the viscosity and thermal conductivity, a modified thermal LBM is used, which is able to extend the ability of LBM to simulate wide range of Knudsen flow regimes. The present study reports the effects of the Knudsen number and porosity on the flow rate, permeability, and mean Nusselt number. The Knudsen's minimum effect for microlnano channels filled with porous media was observed. In addition to the porosity and Knudsen number, the obstacle sizes have important role in the heat transfer, so that enhanced heat transfer is observed when the obstacle sizes decrease. For the same porosity and Knudsen number, the inline porous structure has the highest heat transfer performance.
机译:考虑了在微纳诺通道中的流体动力学和传热,该通道充满了不同孔隙度的多孔介质,克努森数Kn在0.1到10之间。标准晶格玻尔兹曼方法(LBM)的性能限于Knudsen数小于0.1的微尺度流。因此,通过考虑稀疏性对粘度和热导率的影响,使用了改良的热LBM,它能够扩展LBM模拟宽范围Knudsen流态的能力。本研究报告了克努森数和孔隙率对流速,渗透率和平均努塞尔数的影响。观察到努纳森对充满多孔介质的微纳米通道的最小影响。除孔隙率和克努森数外,障碍物尺寸在传热中也起重要作用,因此,当障碍物尺寸减小时,可以观察到传热增强。对于相同的孔隙率和克努森数,直列多孔结构具有最高的传热性能。

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