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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >First and second law analyses of nanofluid forced convection in a partially-filled porous channel - The effects of local thermal non-equilibrium and internal heat sources
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First and second law analyses of nanofluid forced convection in a partially-filled porous channel - The effects of local thermal non-equilibrium and internal heat sources

机译:局部填充的多孔通道中的纳米流体强迫对流的第一定律和第二定律分析-局部热非平衡和内部热源的影响

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Generation of entropy and transfer of heat during forced convection of a nanofluid through a partially filled porous channel are investigated theoretically. The problem includes a fully developed flow in a channel with a central porous insert and under constant heat flux boundary condition. The system is assumed to be under local thermal non-equilibrium and the solid and nanofluid phases can feature internal heat generations. Darcy-Brinkman model of momentum transfer along with the two-equation thermal energy transport and two different fundamental porous-fluid interface models are utilised to analyse the heat transfer problem. Analytical expressions are developed for the temperature fields, Nusselt number and, the local and total entropy generations. The subsequent parametric study reveals the strong influences of the pertinent parameters and the utilised porous-nanofluid interface models. In keeping with others, the results show considerable increases in the Nusselt number with increasing the concentration of nanoparticles. Internal heat generations are demonstrated to have major effects on the heat transfer and entropy generation characterises of the system. Further, the existence of internal heat sources signifies the role of nanoparticles concentration in the thermal and entropic behaviours of the system. It is, also, shown that the choice of the porous-nanofluid interface model can significantly alter the predictions of the local and total entropy generations within the system. This appears to be, particularly, the case at low Biot numbers for which the system is significantly away from the local thermal equilibrium condition. (C) 2016 Elsevier Ltd. All rights reserved.
机译:理论上研究了纳米流体通过部分填充的多孔通道的强制对流过程中的熵的产生和热传递。问题包括在带有中心多孔插入物的通道中并在恒定热通量边界条件下充分发展流动。假定该系统处于局部热不平衡状态,并且固相和纳米流体相可能会产生内部热量。利用达西-布林克曼动量传递模型以及两方程式热能传递和两个不同的基本多孔流体界面模型来分析传热问题。针对温度场,努塞尔数以及局部和总熵的代数,开发了解析表达式。随后的参数研究揭示了相关参数和所使用的多孔-纳米流体界面模型的强大影响。与其他结果一致,结果表明随着纳米粒子浓度的增加,努塞尔数显着增加。内部热量的产生对系统的传热和熵产生具有重大影响。此外,内部热源的存在表明纳米粒子浓度在系统的热和熵行为中的作用。还表明,多孔纳米流体界面模型的选择可以显着改变系统内局部和总熵产生的预测。特别是在低毕奥特数的情况下,系统明显偏离了局部热平衡条件。 (C)2016 Elsevier Ltd.保留所有权利。

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