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首页> 外文期刊>Powder Technology: An International Journal on the Science and Technology of Wet and Dry Particulate Systems >Effects of nanoparticle migration and asymmetric heating on mixed convection of TiO2-H2O nanofluid inside a vertical microchannel
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Effects of nanoparticle migration and asymmetric heating on mixed convection of TiO2-H2O nanofluid inside a vertical microchannel

机译:纳米颗粒迁移和不对称加热对垂直微通道内TiO2-H2O纳米流体混合对流的影响

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摘要

The effects of nanoparticle migration on mixed convection of titania/water nanofluid inside a vertical microchannel have been investigated numerically via Runge-Kutta-Fehlberg method. A modified two-component heterogeneous model is employed for the nanofluid in the hypothesis that the Brownian motion and the thermophoresis are the only responsible mechanisms for nanoparticle migration. Because of small dimensional structures of microchannels, a linear slip condition is considered at the boundaries, which appropriately represents the non-equilibrium region near the interface. To impose different temperature gradients, the heat flux ratio of the right to the left wall (epsilon) is investigated in three different situations, namely the adiabatic right wall (epsilon = 0), unequal heat fluxes at the walls (epsilon < 1) and equal heat fluxes (epsilon = 1). It is revealed that the asymmetric thermal boundary condition affects the direction of nanoparticle migration and distorts the symmetry of the velocity and temperature profiles. In the rich nanoparticle concentration region, the viscosity and the local conductivity increase, which lead to a stronger conduction and a weaker convection rate. Also, it is found that splitting the total amount of heat Mix on the walls unevenly, is the most efficient way to enhance the heat transfer rate in the vertical microchannels. (C) 2014 Elsevier B.V. All rights reserved.
机译:通过Runge-Kutta-Fehlberg方法数值研究了纳米颗粒迁移对垂直微通道内二氧化钛/水纳米流体混合对流的影响。假设布朗运动和热泳是纳米颗粒迁移的唯一负责任的机制,纳米流体采用了修正的两组分异质模型。由于微通道的尺寸结构较小,因此在边界处考虑了线性滑移条件,该条件适当地表示了界面附近的非平衡区域。为了施加不同的温度梯度,在三种不同情况下研究了右壁与左壁的热通量比(ε绝热的右壁(ε= 0),壁上的热通量不相等(epsilon <1)和相等的热通量(ε= 1)。结果表明,不对称的热边界条件影响了纳米粒子的迁移方向,并扭曲了速度和温度分布的对称性。在富纳米颗粒浓度区域中,粘度和局部电导率增加,这导致更强的导电性和更弱的对流速率。而且,发现在壁上不均匀地分配总热量混合是提高垂直微通道中传热速率的最有效方法。 (C)2014 Elsevier B.V.保留所有权利。

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