A hybrid immersed boundary method for dense particle-laden flows

被引:11
作者
Cheron, Victor [1 ]
Evrard, Fabien [1 ]
van Wachem, Berend [1 ]
机构
[1] Otto von Guericke Univ, Lehrstuhl Mech Verfahrenstech, Univ Pl 2, D-39106 Magdeburg, Germany
关键词
Immersed boundary method; Particle-laden flows; Moving-least-squares; MOVING-LEAST-SQUARES; FULLY RESOLVED SIMULATIONS; FLUID; DRAG; ARRAYS;
D O I
10.1016/j.compfluid.2023.105892
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
A novel smooth immersed boundary method (IBM) based on a direct-forcing formulation is proposed to simulate incompressible dense particle-laden flows. This IBM relies on a regularization of the transfer function between the Eulerian grid points (to discretize the fluid governing equations) and Lagrangian markers (to represent the particle surface) to fulfill the no-slip condition at the surfaces of the particles, allowing both symmetrical and non-symmetrical interpolation and spreading supports to be used. This enables that local source term contributions to the Eulerian grid, accounting for the boundary condition enforced at a Lagrangian marker on the surface of a particle, can be present on the inside of the particle only when this is beneficial, for instance when the Lagrangian marker is near another particle surface or near a domain boundary. However, when the Lagrangian marker is not near another particle surface or a domain boundary, the interpolation and spreading operators are locally symmetrical, meaning a "classic"IBM scheme is adopted. This approach, named hybrid IBM (HyBM), is validated with a number of test-cases from the literature. These results show that the HyBM achieves more accurate results compared to a classical IBM framework, especially at coarser mesh resolutions, when there are Lagrangian markers close to a particle surface or a domain wall.
引用
收藏
页数:12
相关论文
共 43 条
[21]   An improved immersed boundary method with direct forcing for the simulation of particle laden flows [J].
Kempe, Tobias ;
Froehlich, Jochen .
JOURNAL OF COMPUTATIONAL PHYSICS, 2012, 231 (09) :3663-3684
[22]  
LANCASTER P, 1981, MATH COMPUT, V37, P141, DOI 10.1090/S0025-5718-1981-0616367-1
[23]   An improved direct-forcing immersed boundary method with inward retraction of Lagrangian points for simulation of particle-laden flows [J].
Luo, Kun ;
Wang, Zhuo ;
Tan, Junhua ;
Fan, Jianren .
JOURNAL OF COMPUTATIONAL PHYSICS, 2019, 376 :210-227
[24]  
Majumdar S., 2001, RANS solvers with adaptive structured boundary non-conforming grids, P353
[25]   Immersed boundary methods [J].
Mittal, R ;
Iaccarino, G .
ANNUAL REVIEW OF FLUID MECHANICS, 2005, 37 :239-261
[26]   A mathematical framework for estimating risk of airborne transmission of COVID-19 with application to face mask use and social distancing [J].
Mittal, Rajat ;
Meneveau, Charles ;
Wu, Wen .
PHYSICS OF FLUIDS, 2020, 32 (10)
[27]   Force-amplified, single-sided diffused-interface immersed boundary kernel for correct local velocity gradient computation and accurate no-slip boundary enforcement [J].
Peng, Cheng ;
Wang, Lian-Ping .
PHYSICAL REVIEW E, 2020, 101 (05)
[28]  
Peskin CS, 2002, ACT NUMERIC, V11, P479, DOI 10.1017/S0962492902000077
[29]   NUMERICAL-ANALYSIS OF BLOOD-FLOW IN HEART [J].
PESKIN, CS .
JOURNAL OF COMPUTATIONAL PHYSICS, 1977, 25 (03) :220-252
[30]   FLOW PATTERNS AROUND HEART VALVES - NUMERICAL METHOD [J].
PESKIN, CS .
JOURNAL OF COMPUTATIONAL PHYSICS, 1972, 10 (02) :252-&