TY - JOUR
T1 - Coupled numerical approach combining finite volume and lattice Boltzmann methods for multi-scale multi-physicochemical processes
AU - Chen, Li
AU - He, Ya Ling
AU - Kang, Qinjun
AU - Tao, Wen Quan
PY - 2013/12/5
Y1 - 2013/12/5
N2 - A coupled (hybrid) simulation strategy spatially combining the finite volume method (FVM) and the lattice Boltzmann method (LBM), called CFVLBM, is developed to simulate coupled multi-scale multi-physicochemical processes. In the CFVLBM, computational domain of multi-scale problems is divided into two sub-domains, i.e., an open, free fluid region and a region filled with porous materials. The FVM and LBM are used for these two regions, respectively, with information exchanged at the interface between the two sub-domains. A general reconstruction operator (RO) is proposed to derive the distribution functions in the LBM from the corresponding macro scalar, the governing equation of which obeys the convection-diffusion equation. The CFVLBM and the RO are validated in several typical physicochemical problems and then are applied to simulate complex multi-scale coupled fluid flow, heat transfer, mass transport, and chemical reaction in a wall-coated micro reactor. The maximum ratio of the grid size between the FVM and LBM regions is explored and discussed.
AB - A coupled (hybrid) simulation strategy spatially combining the finite volume method (FVM) and the lattice Boltzmann method (LBM), called CFVLBM, is developed to simulate coupled multi-scale multi-physicochemical processes. In the CFVLBM, computational domain of multi-scale problems is divided into two sub-domains, i.e., an open, free fluid region and a region filled with porous materials. The FVM and LBM are used for these two regions, respectively, with information exchanged at the interface between the two sub-domains. A general reconstruction operator (RO) is proposed to derive the distribution functions in the LBM from the corresponding macro scalar, the governing equation of which obeys the convection-diffusion equation. The CFVLBM and the RO are validated in several typical physicochemical problems and then are applied to simulate complex multi-scale coupled fluid flow, heat transfer, mass transport, and chemical reaction in a wall-coated micro reactor. The maximum ratio of the grid size between the FVM and LBM regions is explored and discussed.
KW - Coupling (hybrid)
KW - Finite volume method
KW - Lattice Boltzmann method
KW - Multi-physicochemical processes
KW - Multi-scale simulation
KW - Reconstruction operator
UR - https://www.scopus.com/pages/publications/84883520995
U2 - 10.1016/j.jcp.2013.07.034
DO - 10.1016/j.jcp.2013.07.034
M3 - 文章
AN - SCOPUS:84883520995
SN - 0021-9991
VL - 255
SP - 83
EP - 105
JO - Journal of Computational Physics
JF - Journal of Computational Physics
ER -