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A modified lattice Boltzmann model for conjugate heat transfer in porous media

机译:多孔介质中共轭传热的改进格子Boltzmann模型

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A modified lattice Boltzmann model for conjugate heat transfer in a system containing simultaneously a porous medium and other media is proposed. In this model, the volumetric heat capacity and a new parameter are introduced to the equilibrium temperature distribution function for satisfying the temperature and heat flux continuities at the interface between two phases with different thermal properties (thermal conductivity and volumetric heat capacity), as well as avoiding any correction of distribution functions neighboring the interface. The macroscopic temperature equations are correctly recovered from the corresponding lattice Boltzmann equations by the Chapman-Enskog procedure. Detailed numerical tests of the proposed model are carried out for several benchmark problems including steady-state conjugate heat conduction within two-layer solid medium, transient conjugate heat conduction in infinite composite solid, conjugate natural convection in a cavity partially filled with porous medium and conjugate heat transfer in porous media with a conducting wall. The present numerical results are in excellent agreement with analytical and numerical solutions reported in previous studies. Therefore, it is verified that the present model can be served as a feasible tool for conjugate heat transfer problems in porous media.
机译:提出了一种同时包含多孔介质和其他介质的系统中共轭传热的改进格子Boltzmann模型。在该模型中,将体积热容和新参数引入平衡温度分布函数,以满足具有不同热特性(导热系数和体积热容)的两相之间的界面处的温度和热通量连续性,以及避免对接口附近的分布函数进行任何校正。通过Chapman-Enskog程序从相应的格子Boltzmann方程正确地恢复了宏观温度方程。针对几个基准问题对模型进行了详细的数值测试,包括两层固体介质中的稳态共轭热传导,无限复合固体中的瞬态共轭热传导,部分填充有多孔介质的空腔中的共轭自然对流和共轭带有传导壁的多孔介质中的热传递。目前的数值结果与先前研究中报道的分析和数值解非常吻合。因此,证实了该模型可以作为多孔介质中共轭传热问题的可行工具。

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