首页> 外文期刊>International communications in heat and mass transfer >Optimization of heating-cooling generators with porous components/ cryogenic conductors on natural convection in a porous enclosure: Using different two-phase models and single-phase model and using different designs
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Optimization of heating-cooling generators with porous components/ cryogenic conductors on natural convection in a porous enclosure: Using different two-phase models and single-phase model and using different designs

机译:在多孔箱体中自然对流的带有多孔组件/低温导体的冷热发生器的优化:使用不同的两相模型和单相模型,并使用不同的设计

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In the present study, the effect of the use of heating and cooling generators along with cryogenic conductors on flow and heat transfer characteristics in a porous chamber are investigated. The finite volume method (FVM) is used to simulate the phenomena. Single-phase and two-phase models (Mixture model and Eulerian-Eulerian model) have been used to predict heat transfer. Water-Copper oxide nanofluid is assumed to be Newtonian, incompressible, and steady. Several cases have been investigated in order to evaluate the heat transfer rate and streamlines visualization accurately. Investigations include a change in the number of heating and cooling generators, a change in the size of the cryogenic conductors, and the use of porous components as an alternative to cryogenic conductors. The volume fraction is assumed to be constant in the whole simulation and is 3%. The Rayleigh and Darcy numbers ranges are 10~4 ≤ Ra ≤ 10~7 and 10~(-2) ≤ Da ≤ 10~(-4), respectively. The Darcy-Forchheimer model is used for fluid flow and heat transfer in a porous medium. The results of this study are compared with the results of a regular enclosure that has been studied by many previous researchers. The findings show that the effect of using heating-cooling generators is favorable and that cryogenic conductors can also help to improve heat transfer. However, in some conditions using a regular porous enclosure yields better results. In addition, the difference in the results of single-phase and two-phase models depending on the operating conditions can be low or high. The goal is to achieve the highest heat transfer rate using the available tools. It is hoped that using the results of this research can be a useful guide to better understanding the phenomena and optimum and better designs.
机译:在本研究中,研究了加热和冷却发生器以及低温导体对多孔室内流动和传热特性的影响。有限体积法(FVM)用于模拟现象。单相和两相模型(混合模型和欧拉-欧拉模型)已用于预测传热。假定水铜氧化物纳米流体是牛顿的,不可压缩的且稳定的。为了评估传热速率和准确地简化可视化,已经研究了几种情况。研究包括改变加热和冷却发生器的数量,改变低温导体的尺寸,以及使用多孔部件代替低温导体。假设体积分数在整个模拟中是恒定的,为3%。瑞利数和达西数范围分别为10〜4≤Ra≤10〜7和10〜(-2)≤Da≤10〜(-4)。 Darcy-Forchheimer模型用于在多孔介质中进行流体流动和传热。这项研究的结果与以前许多研究人员已经研究过的常规围护结构的结果进行了比较。研究结果表明,使用冷热发生器的效果是有利的,而低温导体也可以帮助改善热传递。但是,在某些情况下,使用规则的多孔外壳会产生更好的结果。此外,根据操作条件,单相和两相模型的结果差异可能很小也可能很大。目标是使用可用的工具获得最高的传热速率。希望利用这项研究的结果可以为更好地理解现象以及优化设计提供有用的指导。

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