TY - JOUR
T1 - Pore-scale flow simulation in anisotropic porous material via fluid-structure coupling
AU - Li, Chen
AU - Wang, Changbo
AU - Zhang, Shenfan
AU - Qiu, Sheng
AU - Qin, Hong
N1 - Publisher Copyright:
© 2017
PY - 2018/1
Y1 - 2018/1
N2 - This paper describes a novel hybrid method for fluid simulation of saturating anisotropic porous material via fluid-structure coupling. Our framework employs particle finite element method (PFEM) that not only adopts Lagrangian scheme to model the motion of freely-moving particles, but also produces the extended Delaunay Tessellation to furnish the governing equations with FEM discretization. We first employ adaptive smoothed particle hydrodynamics (SPH) to simulate porous flow respecting the anisotropic permeability with little cost. Second, the extended Delaunay Tessellation is obtained to solve differential equations for skeletal deformation. Third, a hybrid particle system is adopted to track the surface and topological changes. At the physical level, we introduce dynamic permeability considering skeletal deformation via fluid-structure coupling. At the geometric level, PFEM reduces the computational cost and effectively tracks topological changes. Moreover, our implementation on CUDA improves the performance in high-quality physics-based graphics applications. Consequently, the proposed method realistically reproduces interactions between pore-scale flow and anisotropic porous material.
AB - This paper describes a novel hybrid method for fluid simulation of saturating anisotropic porous material via fluid-structure coupling. Our framework employs particle finite element method (PFEM) that not only adopts Lagrangian scheme to model the motion of freely-moving particles, but also produces the extended Delaunay Tessellation to furnish the governing equations with FEM discretization. We first employ adaptive smoothed particle hydrodynamics (SPH) to simulate porous flow respecting the anisotropic permeability with little cost. Second, the extended Delaunay Tessellation is obtained to solve differential equations for skeletal deformation. Third, a hybrid particle system is adopted to track the surface and topological changes. At the physical level, we introduce dynamic permeability considering skeletal deformation via fluid-structure coupling. At the geometric level, PFEM reduces the computational cost and effectively tracks topological changes. Moreover, our implementation on CUDA improves the performance in high-quality physics-based graphics applications. Consequently, the proposed method realistically reproduces interactions between pore-scale flow and anisotropic porous material.
KW - Anisotropic porous material
KW - Fluid-structure coupling
KW - Particle finite element method
KW - Realistic simulation
UR - https://www.scopus.com/pages/publications/85040329747
U2 - 10.1016/j.gmod.2017.12.001
DO - 10.1016/j.gmod.2017.12.001
M3 - 文章
AN - SCOPUS:85040329747
SN - 1524-0703
VL - 95
SP - 14
EP - 26
JO - Graphical Models
JF - Graphical Models
ER -