The hydrodynamic FORCE of fluid-structure interaction interface in lattice Boltzmann simulations

被引:2
|
作者
Tong, Ying [1 ]
Xia, Jian [1 ]
机构
[1] Nanjing Univ Aeronaut & Astronaut, Coll Aerosp Engn, Nanjing 210016, Peoples R China
来源
INTERNATIONAL JOURNAL OF MODERN PHYSICS B | 2020年 / 34卷 / 14-16期
关键词
Hydrodynamic force; lattice Boltzmann simulation; relaxation model; BOUNDARY-CONDITIONS;
D O I
10.1142/S0217979220400858
中图分类号
O59 [应用物理学];
学科分类号
摘要
The hydrodynamic force (HF) evaluation plays a critical role in the numerical simulation of fluid-structure interaction (FSI). By directly using the distribution functions of lattice Boltzmann equation (LBE) to evaluate the HF, the momentum exchange algorithm (MEA) has excellent features. Particularly, it is independent of boundary geometry and avoids integration on the complex boundary. In this work, the HF of lattice Boltzmann simulation (LBS) is evaluated by using the MEA. We conduct a comparative study to evaluate two lattice Boltzmann models for constructing the flow solvers, including the LBE with single-relaxation-time (SRT) and multiple-relaxation-time (MRT) collision operators. The second-order boundary condition schemes are used to address the curve boundary. The test case of flow past a cylinder asymmetrically placed in a channel is simulated. Comparing the numerical solutions of Lattice Boltzmann method (LBM) with those of Navier-Stokes equations in the literature, the influence of collision relaxation model, boundary conditions and lattice resolution is investigated. The results demonstrate that the MRT-LB improves the numerical stability of the LBM and the accuracy of HF.
引用
收藏
页数:5
相关论文
共 50 条
  • [41] Fluid-Structure interaction applied to blood flow simulations
    Perez, J. S.
    Soudah, E.
    Garcia, J.
    Escolano, E.
    Onate, E.
    Mena, A.
    Heidenreich, E.
    Rodriguez, J. F.
    Doblare, M.
    COMPUTATIONAL VISION AND MEDICAL IMAGING PROCESSING, 2008, : 183 - 189
  • [42] Hydrodynamic pressure on a vertical gate considering fluid-structure interaction
    Pani, P. K.
    Bhattacharyya, S. K.
    FINITE ELEMENTS IN ANALYSIS AND DESIGN, 2008, 44 (12-13) : 759 - 766
  • [43] Lattice Boltzmann simulations of fluid flows
    Shi, BC
    He, NZ
    Wang, NC
    Guo, ZL
    Guo, WB
    ADVANCED PARALLEL PROCESSING TECHNOLOGIES, PROCEEDINGS, 2003, 2834 : 322 - 332
  • [44] A Geometry-Adaptive Immersed Boundary-Lattice Boltzmann Method for Modelling Fluid-Structure Interaction Problems
    Xu, Lincheng
    Wang, Li
    Tian, Fang-Bao
    Young, John
    Lai, Joseph C. S.
    IUTAM SYMPOSIUM ON RECENT ADVANCES IN MOVING BOUNDARY PROBLEMS IN MECHANICS, 2019, 34 : 161 - 171
  • [45] A phase field-immersed boundary-lattice Boltzmann coupling method for fluid-structure interaction analysis
    Wu, Zhijian
    Guo, Li
    OCEAN ENGINEERING, 2024, 301
  • [46] An Immersed Boundary-Lattice Boltzmann Approach to Study Deformation and Fluid-Structure Interaction of Hollow Sealing Strip
    Shen, Zhe
    Yang, Zhigang
    Abbas, Munawwar Ali
    Yu, Haosheng
    Chen, Li
    ENERGIES, 2021, 14 (23)
  • [47] Immersed Boundary-Finite Difference Lattice Boltzmann method through fluid-structure interaction for viscoplastic fluids
    Kefayati, G. H. R.
    Tang, H.
    Chan, A.
    JOURNAL OF FLUIDS AND STRUCTURES, 2018, 83 : 238 - 258
  • [48] COUPLED FINITE ELEMENT BASED LATTICE BOLTZMANN EQUATION AND STRUCTURAL FINITE ELEMENTS FOR FLUID-STRUCTURE INTERACTION APPLICATION
    Kwon, Y. W.
    Jo, J. C.
    PROCEEDINGS OF THE ASME PRESSURE VESSELS AND PIPING CONFERENCE, VOL 4, 2009, : 93 - 102
  • [49] On the coupling of a direct-forcing immersed boundary method and the regularized lattice Boltzmann method for fluid-structure interaction
    Li, Zhe
    Cao, Wenjin
    Le Touze, David
    COMPUTERS & FLUIDS, 2019, 190 : 470 - 484
  • [50] The lattice Boltzmann method and its applications in complex flows and fluid-structure interactions
    Tian, Fang-Bao
    Wang, Yong
    Liu, Haihu
    Zhang, Yonghao
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART C-JOURNAL OF MECHANICAL ENGINEERING SCIENCE, 2018, 232 (03) : 403 - 404