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Analytical and numerical studies of the boundary slip in the immersed boundary-thermal lattice Boltzmann method
被引:14
|作者:
Seta, Takashi
[1
]
Hayashi, Kosuke
[2
]
Tomiyama, Akio
[2
]
机构:
[1] Toyama Univ, Grad Sch Sci & Engn Res, Toyama 9308555, Japan
[2] Kobe Univ, Grad Sch Engn, Kobe, Hyogo 6578501, Japan
关键词:
double-population approach;
immersed boundary method;
lattice Boltzmann method;
multiblock approach;
temperature jump;
velocity slip;
COPPER-WATER NANOFLUID;
VISCOUS-FLUID FLOWS;
CIRCULAR-CYLINDER;
MIXED CONVECTION;
NATURAL-CONVECTION;
HEAT-TRANSFER;
BGK MODEL;
MICROCHANNEL;
SIMULATION;
STABILITY;
D O I:
10.1002/fld.4462
中图分类号:
TP39 [计算机的应用];
学科分类号:
081203 ;
0835 ;
摘要:
We analytically and numerically investigate the boundary slip, including the velocity slip and the temperature jump, in immersed boundary-thermal lattice Boltzmann methods (IB-TLBMs) with the two-relaxation-time collision operator. We derive the theoretical equation for the relaxation parameters considering the effect of the advection velocity on the temperature jump of the IB-TLBMs. The analytical and numerical solutions demonstrate that the proposed iterative correction methods without the computational cost of the sparse matrix solver reduce the boundary slip and boundary-value deviation as effectively as the implicit correction method for any relaxation time. Because the commonly used multi-direct forcing method does not consider the contributions of the body force to the momentum flux, it cannot completely eliminate the boundary slip because of the numerical instability for a long relaxation time. Both types of proposed iterative correction methods are more numerically stable than the implicit correction method. In simulations of flow past a circular cylinder and of natural convection, the present iterative correction methods yield adequate results without the errors of the velocity slip, the temperature jump, and the boundary-value deviation for any relaxation time parameters and for any number of Lagrangian points per length. The combination of the present methods and the two-relaxation-time collision operator is suitable for simulating fluid flow with thermal convection in the multiblock method in which the relaxation time increases in inverse proportion to the grid size.
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页码:454 / 490
页数:37
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