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Multi-layered Porous Foam Effects on Heat Transfer and Entropy Generation of Nanofluid Mixed Convection Inside a Two-Sided Lid-Driven Enclosure with Internal Heating

机译:多层带盖泡沫对内部加热的两面带盖驱动外壳内纳米流体混合对流的传热和熵产生的影响

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摘要

Mixed convection of Cu-water nanofluid inside a two-sided lid-driven enclosure with an internal heater, filled with multi-layered porous foams is studied numerically and its heat transfer and entropy generation number are evaluated. Use of multi-layered porous media instead of homogeneous ones is capable of heat transfer enhancement, by weakening flow where does not impose a pivotal role on heat transfer and amplifying the flow in regions where have more effects on the heat transfer. Eight different arrangements of porous layers are considered and the two-phase mixture model is implemented to simulate nanofluid mixed convection inside the cavity. Results are presented in terms of stream functions, isotherms, Nusselt and entropy generation number for the eight cases considering various Richardson numbers (Ri = 10(-4) to 10(3)) and nanofluid concentrations (phi=0 to 0.04). Results indicate that using the multi-layered porous material can confine flow vortices in the vicinity of the moving walls and could enhance the heat transfer up to 17 percent (with respect to the case using homogeneous porous material with the highest permeability), such that this enhancement is more in lower Ri values (stronger convective effects). Entropy generation number also increases by nanofluid volume fraction increment and Ri decrement. Cases with a higher heat transfer rate also have the higher entropy generation number. In addition, an increase of volume fraction decreases the relative entropy generation number (S*) for low Ri number, while contrary fact observed for high Ri values.
机译:数值研究了装有内部加热器的双面盖驱动外壳内的铜水纳米流体的对流混合对流,并填充了多层多孔泡沫,并对其传热和熵产生数进行了评估。使用多层多孔介质代替均质介质能够通过减弱不对传热起关键作用的流动并放大对传热有更大影响的区域中的流动来增强传热。考虑了八种不同的多孔层排列方式,并采用了两相混合物模型来模拟腔体内的纳米流体混合对流。考虑到各种理查森数(Ri = 10(-4)至10(3))和纳米流体浓度(phi = 0至0.04),针对八种情况,以流函数,等温线,努塞尔特和熵产生数的形式给出了结果。结果表明,使用多层多孔材料可以将流动涡流限制在移动壁附近,并且可以将热传递提高到17%(相对于使用具有最高渗透率的均质多孔材料的情况),这样Ri值越低(对流效应越强),增强作用越大。熵产生数也随着纳米流体体积分数的增加和Ri的减少而增加。传热率较高的情况也具有较高的熵产生数。另外,对于低Ri值,体积分数的增加会降低相对熵生成数(S *),而对于高Ri值则观察到相反的事实。

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