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首页> 外文期刊>International Journal of Mechanical Sciences >Numerical analysis on laminar forced convection improvement of hybrid nanofluid within a U-bend pipe in porous media
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Numerical analysis on laminar forced convection improvement of hybrid nanofluid within a U-bend pipe in porous media

机译:多孔介质U形弯管内杂交纳米流体杂交纳米流体的数值分析

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Nanofluids and porous media have offered a feasible approach to develop heat transfer within industrial systems. The application of porous substances with high thermal conductivity can enhance the heat transfer as well. Besides the heat transfer improvements, porous media are capable of enhancing the pressure drop. In this regard, the current research is aimed at conducting a 3D numerical investigation on the laminar flow and heat transfer of Al2O3-CuO- water hybrid nanofluid inside a U-bend pipe within a porous medium. The evaluations were performed for a wide range of governing parameters. ANSYS-FLUENT is a finite volume-based computational fluid dynamics (CFD) solver which was considered to discretize the governing equations. The line-by-line method was also applied for iterative solution of the algebraic equations. As well as, the nanofluid flow was employed as a two-phase flow where a Darcy-Brinkman-Forchheimer equation was exploited to model fluid flow within a porous medium. Simulations were carried out under the laminar flow regime using a finite volume scheme. Moreover, the thermal boundary conditions of the cylinder walls were constant uniform heat flux. The averaged Nusselt number, volume fraction (0%-5%), and the performance evaluation criteria (PEC) were assessed for a verity of Darcy and Dean numbers. The findings of the current work were compared with the experimental data and the simulation accuracy was verified due to the proper agreement between the theoretical and experimental results. Based on the results, Darcy number (10(-4)-10(-1)) and the porous thickness ratio enlargement could significantly affect the elevation of the heat transfer coefficient. Furthermore, for all nanofluids, the averaged Nusselt number and pressure drop exhibited an increasing pattern upon an increment of volume fraction while PEC showed a decreasing one. In addition, the maximum PEC was observed in configurations encompassing a permeable porous media (i.e. a medium with Da = 0.1 and r(P) = 0.8).
机译:纳米流体和多孔介质提供了一种可行的方法来在工业系统中发育热转印。具有高导热率的多孔物质的应用也可以增强传热。除了传热改进之外,多孔介质能够增强压降。在这方面,目前的研究旨在对多孔介质内的U形弯管内的Al2O3-CuO-水杂交纳米流体的层流和传热进行3D数值研究。对广泛的管理参数进行评估。 ANSYS-FLUENT是基于有限的基于体积的计算流体动力学(CFD)求解器,其被认为是离散化控制方程。逐行方法也应用了代数方程的迭代解。除了,纳米流体流动用作两相流的流动,其中达西 - Brinkman-Forchheimer方程被利用以模拟多孔介质内的流体流动。使用有限体积方案在层流状态下进行仿真。此外,汽缸壁的热边界条件是恒定均匀的热通量。对达西和院长数量的符合评估平均的营养数,体积分数(0%-5%)和绩效评估标准(PEC)。当前工作的发现与实验数据进行比较,并且由于理论和实验结果之间的适当协议,验证了模拟精度。基于结果,达西数(10(-4)-10(-1))和多孔厚度增大可以显着影响传热系数的升高。此外,对于所有纳米流体,平均的露天数和压降在体积分数的增量时表现出增加的模式,而PEC表现出降低的则。此外,在包围可渗透多孔介质的配置中观察到最大PEC(即具有DA = 0.1和R(P)= 0.8)的培养基)。

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