Kinematics of chromodynamic multicomponent lattice Boltzmann simulation with a large density contrast

被引:7
|
作者
Burgin, K. [1 ]
Spendlove, J. [1 ]
Xu, X. [1 ,2 ]
Halliday, I [1 ]
机构
[1] Sheffield Hallam Univ, Mat & Engn Res Inst, Howard St, Sheffield S1 1WB, S Yorkshire, England
[2] Sheffield Hallam Univ, Dept Engn & Math, Howard St, Sheffield S1 1WB, S Yorkshire, England
关键词
LIQUID-GAS; MODELS; FLOW;
D O I
10.1103/PhysRevE.100.043310
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
The utility of an enhanced chromodynamic, color gradient or phase-field multicomponent lattice Boltzmann (MCLB) equation for immiscible fluids with a density difference was demonstrated by Wen et al. [Phys. Rev. E 100, 023301 (2019)] and Ba et al. [Phys. Rev. E 94, 023310 (2016)], who advanced earlier work by Liu et al. [Phys. Rev. E 85, 046309 (2012)] by removing certain error terms in the momentum equations. But while these models' collision scheme has been carefully enhanced by degrees, there is, currently, no quantitative consideration in the macroscopic dynamics of the segregation scheme which is common to all. Here, by analysis of the kinetic-scale segregation rule (previously neglected when considering the continuum behavior) we derive, bound, and test the emergent kinematics of the continuum fluids' interface for this class of MCLB, concurrently demonstrating the circular relationship with-and competition between-the models' dynamics and kinematics. The analytical and numerical results we present in Sec. V confirm that, at the kinetic scale, for a range of density contrast, color is a material invariant. That is, within numerical error, the emergent interface structure is isotropic (i.e., without orientation dependence) and Galilean-invariant (i.e., without dependence on direction of motion). Numerical data further suggest that reported restrictions on the achievable density contrast in rapid flow, using chromodynamic MCLB, originate in the effect on the model's kinematics of the terms deriving from our term F-1i in the evolution equation, which correct its dynamics for large density differences. Taken with Ba's applications and validations, this result significantly enhances the theoretical foundation of this MCLB variant, bringing it somewhat belatedly further into line with the schemes of Inamuro et al. Comput. Phys. 198, 62R (2004)] and the free-energy scheme [see, e.g., Phys. Rev. E. 76, 045702(R) (2007), and references therein] which, in contradistinction to the present scheme and perhaps wisely, postulate appropriate kinematics a priori.
引用
收藏
页数:15
相关论文
共 50 条
  • [21] Lattice Boltzmann multicomponent model for direct-writing printing
    Monteferrante, Michele
    Montessori, Andrea
    Succi, Sauro
    Pisignano, Dario
    Lauricella, Marco
    PHYSICS OF FLUIDS, 2021, 33 (04)
  • [22] Benchmarking of three-dimensional multicomponent lattice Boltzmann equation
    Xu, X.
    Burgin, K.
    Ellis, M. A.
    Halliday, I.
    PHYSICAL REVIEW E, 2017, 96 (05)
  • [23] Multicomponent lattice Boltzmann equation method with a discontinuous hydrodynamic interface
    Spencer, T. J.
    Halliday, I.
    PHYSICAL REVIEW E, 2013, 88 (06):
  • [24] Multiphase lattice Boltzmann flux solver for incompressible multiphase flows with large density ratio
    Wang, Y.
    Shu, C.
    Huang, H. B.
    Teo, C. J.
    JOURNAL OF COMPUTATIONAL PHYSICS, 2015, 280 : 404 - 423
  • [25] Lattice Boltzmann modeling of multiphase flows at large density ratio with an improved pseudopotential model
    Li, Q.
    Luo, K. H.
    Li, X. J.
    PHYSICAL REVIEW E, 2013, 87 (05)
  • [26] LATTICE BOLTZMANN SIMULATION OF TURBULENT NATURAL CONVECTION IN TALL ENCLOSURES
    Sajjadi, Hasan
    Kefayati, Reza
    THERMAL SCIENCE, 2015, 19 (01): : 155 - 166
  • [27] Lattice-Boltzmann simulation of induced cavitation in protruding structure
    Sun, Zhixin
    Cao, Hongzhang
    Shan, Long
    Hu, Xuegong
    NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 2019, 76 (06) : 465 - 478
  • [28] An Investigation of the Lattice Boltzmann Method for Large Eddy Simulation of Complex Turbulent Separated Flow
    Premnath, Kannan N.
    Pattison, Martin J.
    Banerjee, Sanjoy
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2013, 135 (05):
  • [29] Application of large eddy simulation models to electroconvection turbulence study with lattice Boltzmann method
    Zhang, Yu
    Luo, Kang
    Yi, Hongliang
    Liu, Anjun
    Wu, Jian
    PHYSICAL REVIEW FLUIDS, 2024, 9 (08):
  • [30] A mathematical-boundary-recognition domain-decomposition Lattice Boltzmann method combined with large eddy simulation applied to airfoil aeroacoustics simulation
    Jia, Qi
    Zhang, Jin
    Liang, Wen-zhi
    Liu, Pei-qing
    Qu, Qiu-lin
    INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2024, 96 (07) : 1250 - 1275