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MicroChannel heat transfer and dispersion of nanoparticles in slip flow regime with constant heat flux

机译:具有恒定热通量的滑流状态下纳米颗粒的微通道传热和分散

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摘要

If the hydrodynamic diameter of a channel is comparable with the mean free path of the gas molecules moving inside the channel, the fluid can no longer be considered to be in thermodynamic equilibrium and a variety of non-continuum or rarefaction effects can occur. To avoid enormous complexity and extensive numerical cost encountered in modeling of nonlinear Boltzmann equations, the Navier-Stokes equations can be solved considering the concepts of slip flow regime and applying slip velocity boundary conditions at the solid walls.rnIn this study, the Navier-Stokes and energy equations for fluid flow in a microchannel in slip flow regime were solved analytically and temperature and velocity profiles were evaluated. The effect of different parameters on heat transfer and dispersion of nanoparticles was discussed. Dispersion of particles due to drag force, Saffman lift force, Brownian forces and gravity force was studied using a Lagrangian approach. The presented results could provide guidelines for heat transfer modeling in nanofluids.
机译:如果通道的流体动力学直径可与气体分子在通道内部移动的平均自由程相媲美,则流体不再被认为处于热力学平衡状态,并且会发生各种非连续或稀疏效应。为避免在非线性Boltzmann方程建模中遇到巨大的复杂性和庞大的数值成本,可以考虑滑流状态的概念并在实心壁上应用滑移速度边界条件来求解Navier-Stokes方程。解析了滑流状态下微通道中流体流动的能量方程,并分析了温度和速度分布。讨论了不同参数对纳米颗粒传热和分散的影响。使用拉格朗日方法研究了由于阻力,萨夫曼升力,布朗力和重力引起的颗粒分散。提出的结果可以为纳米流体传热建模提供指导。

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