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研究倾斜双层均匀多孔流体方腔内的双扩散自然对流。

Investigating double-diffusive natural convection in a sloped dual-layered homogenous porous-fluid square cavity.

作者信息

Jalili Bahram, Emad Majdeddin, Malekshah Emad Hasani, Jalili Payam, Akgül Ali, Hassani Murad Khan

机构信息

Department of Mechanical Engineering, North Tehran Branch, Islamic Azad University, Tehran, Iran.

Department of Power Engineering and Turbomachinery, Silesian University of Technology, 44-10 0, Gliwice, Poland.

出版信息

Sci Rep. 2024 Mar 26;14(1):7193. doi: 10.1038/s41598-024-57395-2.

Abstract

This article investigates natural convection with double-diffusive properties numerically in a vertical bi-layered square enclosure. The cavity has two parts: one part is an isotropic and homogeneous porous along the wall, and an adjacent part is an aqueous fluid. Adiabatic, impermeable horizontal walls and constant and uniform temperatures and concentrations on other walls are maintained. To solve the governing equations, the finite element method (FEM) employed and predicted results shows the impact of typical elements of convection on double diffusion, namely the porosity thickness, cavity rotation angle, and thermal conductivity ratio. Different Darcy and Rayleigh numbers effects on heat transfer conditions were investigated, and the Nusselt number in the border of two layers was obtained. The expected results, presented as temperature field (isothermal lines) and velocity behavior in X and Y directions, show the different effects of the aforementioned parameters on double diffusion convective heat transfer. Also results show that with the increase in the thickness of the porous layer, the Nusselt number decreases, but at a thickness higher than 0.8, we will see an increase in the Nusselt number. Increasing the thermal conductivity ratio in values less than one leads to a decrease in the average Nusselt number, and by increasing that parameter from 1 to 10, the Nusselt values increase. A higher rotational angle of the cavity reduces the thermosolutal convective heat transfer, and increasing the Rayleigh and Darcy numbers, increases Nusselt. These results confirm that the findings obtained from the Finite Element Method (FEM), which is the main idea of this research, are in good agreement with previous studies that have been done with other numerical methods.

摘要

本文对垂直双层方形封闭腔内具有双扩散特性的自然对流进行了数值研究。该腔体分为两部分:一部分是沿壁面的各向同性均匀多孔介质,相邻部分是水性流体。保持水平壁面绝热、不可渗透,其他壁面温度和浓度恒定且均匀。为求解控制方程,采用了有限元方法(FEM),预测结果显示了对流典型元素对双扩散的影响,即孔隙率厚度、腔体旋转角度和热导率比。研究了不同达西数和瑞利数对传热条件的影响,并得到了两层边界处的努塞尔数。以温度场(等温线)以及X和Y方向的速度行为呈现的预期结果,显示了上述参数对双扩散对流换热的不同影响。结果还表明,随着多孔层厚度的增加,努塞尔数减小,但当厚度大于0.8时,努塞尔数会增加。热导率比在小于1时增加会导致平均努塞尔数减小,而将该参数从1增加到10时,努塞尔值会增加。腔体的旋转角度越大,热溶质对流换热越小,而瑞利数和达西数增加时,努塞尔数会增加。这些结果证实,作为本研究主要思想的有限元方法(FEM)所得结果与先前用其他数值方法进行的研究结果吻合良好。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a820/11343889/df7dc2222025/41598_2024_57395_Fig1_HTML.jpg

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