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Lattice Boltzmann Simulation of Convection in a Porous Medium with Temperature Jump and Velocity Slip Boundary Conditions

Lattice Boltzmann Simulation of Convection in a Porous Medium with Temperature Jump and Velocity Slip Boundary Conditions
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摘要 To investigate the convection in a porous medium, a horizontal quiescent layer of one fluid saturating a porous medium heated from bottom is numerically studied using single lattice-Boltzmann method (LBM) and the generalized Navier Stokes equation proposed by Nithiarasu et al. [P. Nithiarasu, K.M. Seetharamu, and T Sundararajan Int. J. Heat Mass Trans. 40 (1997) 3955]. Due to the rarefaction, the boundary conditions are considered as both temperature jump and velocity slip. The computational results are vahdated against the analytical results, and excellent agreement has been obtained. The results have shown that the Rayleigh number is increased with increasing temperature jump, the stabilization effect of temperature is much more significant than that of velocity slip, and the computation stability of present model is better than that of Darey and Brinkman models.
出处 《Communications in Theoretical Physics》 SCIE CAS CSCD 2008年第5期1319-1322,共4页 理论物理通讯(英文版)
基金 The project supported by National Natural Science Foundation of China under Grant No.10572130 the National Basic Research Programs of China under Grant No.2006CB708612 the Research Grants Council of the Government of the HKSAR under Grant Nos.PolyU5221/05E and PolyU 5231/06E PolyU Natural Science Foundation of Zhejiang Province of China under Grant No.Y607425
关键词 convection in porous medium lattice Boltzmann method boundary condition 多孔渗透媒介对流 LBM 晶格 边界联系 温度
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参考文献20

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