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A Correlation for Nusselt Number of Slip Gas Flow in Confined Porous Media

机译:狭窄多孔介质中露珠流量流动数的相关性

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A clear understanding of flow and heat transfer at pore-scale level in microporous media is a topic of concern in microcooling/heating systems. In this work, a multiple-relaxation-time lattice Boltzmann method (LBM) is employed to study flow and heat transfer of gas in microporous media. Curved boundaries are treated using an effective boundary condition, which is formed by combining nonequilibrium extrapolation with counterextrapola-tion methods. The method also incorporates velocity slip and temperature jump on gas-solid interface. A two-dimensional (2D) porous domain composed of microcylinders, is considered from a representative element volume (REV) for the simulation. Porosity of the domain is variated by altering diameter of microcylinders. Nusselt number is calculated by varying Knudsen number (0.0-0.1), Reynolds number (5-50) and porosity (0.4-0.8). Based on the obtained numerical predictions, a new Nusselt number correlation is proposed for the first time in this work which can accurately predict the heat transfer for slip gas flow in confined porous media.
机译:在微孔介质中清楚地了解在微孔介质中的孔隙级水平上的流动和传热是微电容/加热系统中令人担忧的主题。在这项工作中,采用多弛豫时间格子Boltzmann方法(LBM)来研究微孔介质中气体的流动和热传递。使用有效边界条件处理弯曲边界,其通过将非Quiribrium外推形成,通过与尖端的方法组合形成。该方法还包括速度滑动和温度跳跃在气体固体界面上。由微凸吲哚组组成的二维(2D)多孔结构域被认为是用于模拟的代表元素体积(Rev)。通过改变微胶质蛋白的直径来改变该结构域的孔隙率。通过不同的knudsen号(0.0-0.1),雷诺数(5-50)和孔隙度(0.4-0.8)来计算纽带数。基于所获得的数值预测,在该工作中首次提出了一种新的培养数相关,这可以准确地预测限制多孔介质中的滑移气流的热传递。

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