• DocumentCode
    63893
  • Title

    Turbulence Simulation by Adaptive Multi-Relaxation Lattice Boltzmann Modeling

  • Author

    Xiaopei Liu ; Wai-Man Pang ; Jing Qin ; Chi-Wing Fu

  • Author_Institution
    Sch. of Comput. Eng., Nanyang Technol. Univ., Singapore, Singapore
  • Volume
    20
  • Issue
    2
  • fYear
    2014
  • fDate
    Feb. 2014
  • Firstpage
    289
  • Lastpage
    302
  • Abstract
    This paper presents a novel approach to simulating turbulent flows by developing an adaptive multirelaxation scheme in the framework of lattice Boltzmann equation (LBE). Existing LBE methods in graphics simulations are usually insufficient for turbulent flows since the collision term disturbs the underlying stability and accuracy. We adopt LBE with the multiple relaxation time (MRT) collision model (MRT-LBE), and address this issue by enhancing the collision-term modeling. First, we employ renormalization group analysis and formulate a new turbulence model with an adaptive correction method to compute more appropriate eddy viscosities on a uniform lattice structure. Efficient algebraic calculations are retained with small-scale turbulence details while maintaining the system stability. Second, we note that for MRT-LBE, predicting single eddy viscosity per lattice node may still result in instability. Hence, we simultaneously predict multiple eddy viscosities for stress-tensor-related elements, thereby asynchronously computing multiple relaxation parameters to further enhance the MRT-LBE stability. With these two new strategies, turbulent flows can be simulated with finer visual details even on coarse grid configurations. We demonstrate our results by simulating and visualizing various turbulent flows, particularly with smoke animations, where stable turbulent flows with high Reynolds numbers can be faithfully produced.
  • Keywords
    flow instability; flow simulation; lattice Boltzmann methods; renormalisation; turbulence; viscosity; LBE method; adaptive correction method; adaptive multirelaxation lattice Boltzmann model; algebraic calculation; coarse grid configuration; collision model; collision-term modeling; computational fluid dynamics; flow instability; graphics simulations; high Reynolds numbers; multiple eddy viscosity; multiple relaxation time; renormalization group; smoke animation; stress-tensor-related elements; turbulent flow simulation; uniform lattice structure; Adaptation models; Computational modeling; Lattice Boltzmann methods; Mathematical model; Numerical models; Viscosity; Adaptation models; Computational modeling; Lattice Boltzmann methods; Mathematical model; Numerical models; Turbulence simulation; Viscosity; lattice Boltzmann models; multiple relaxation time model; turbulence modeling;
  • fLanguage
    English
  • Journal_Title
    Visualization and Computer Graphics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1077-2626
  • Type

    jour

  • DOI
    10.1109/TVCG.2012.303
  • Filename
    6341727