Lattice Boltzmann Simulation of Particle Motion in Binary Immiscible Fluids

Lattice Boltzmann Simulation of Particle Motion in Binary Immiscible Fluids

Year:    2015

Communications in Computational Physics, Vol. 18 (2015), Iss. 3 : pp. 757–786

Abstract

We combine the Shan-Chen multicomponent lattice Boltzmann model and the link-based bounce-back particle suspension model to simulate particle motion in binary immiscible fluids. The impact of the slightly mixing nature of the Shan-Chen model and the fluid density variations near the solid surface caused by the fluid-solid interaction, on the particle motion in binary fluids is comprehensively studied. Our simulations show that existing models suffer significant fluid mass drift as the particle moves across nodes, and the obtained particle trajectories deviate away from the correct ones. A modified wetting model is then proposed to reduce the non-physical effects, and its effectiveness is validated by comparison with existing wetting models. Furthermore, the first-order refill method for the newly created lattice node combined with the new wetting model significantly improves mass conservation and accuracy.

You do not have full access to this article.

Already a Subscriber? Sign in as an individual or via your institution

Journal Article Details

Publisher Name:    Global Science Press

Language:    English

DOI:    https://doi.org/10.4208/cicp.101114.150415a

Communications in Computational Physics, Vol. 18 (2015), Iss. 3 : pp. 757–786

Published online:    2015-01

AMS Subject Headings:    Global Science Press

Copyright:    COPYRIGHT: © Global Science Press

Pages:    30

Keywords:   

  1. An improved immersed moving boundary for hydrodynamic force calculation in lattice Boltzmann method

    Chen, Zhiqiang | Wang, Moran

    International Journal for Numerical Methods in Engineering, Vol. 121 (2020), Iss. 20 P.4493

    https://doi.org/10.1002/nme.6444 [Citations: 5]
  2. Orientation-dependent phase transition pathways of single-crystal nickel over large shock range

    Liu, Tao | Chen, Liming | Li, Weiguo | Liu, Zhanfang | Zhang, Jun | Zhang, Xiaotian | Zhang, Xinghua | Zhu, Shaowei | Hou, Xianbo

    International Journal of Mechanical Sciences, Vol. 261 (2024), Iss. P.108689

    https://doi.org/10.1016/j.ijmecsci.2023.108689 [Citations: 5]
  3. Controlled 3D nanoparticle deposition by drying of colloidal suspension in designed thin micro-porous architectures

    Qin, Feifei | Su, Meng | Zhao, Jianlin | Mazloomi Moqaddam, Ali | Carro, Luca Del | Brunschwiler, Thomas | Kang, Qinjun | Song, Yanlin | Derome, Dominique | Carmeliet, Jan

    International Journal of Heat and Mass Transfer, Vol. 158 (2020), Iss. P.120000

    https://doi.org/10.1016/j.ijheatmasstransfer.2020.120000 [Citations: 23]
  4. Discretization limits of lattice‐Boltzmann methods for studying immiscible two‐phase flow in porous media

    Li, Zhe | McClure, James E. | Middleton, Jill | Varslot, Trond | Sheppard, Adrian P.

    International Journal for Numerical Methods in Fluids, Vol. 92 (2020), Iss. 9 P.1162

    https://doi.org/10.1002/fld.4822 [Citations: 5]
  5. Bonding Strength Effects in Hydro-Mechanical Coupling Transport in Granular Porous Media by Pore-Scale Modeling

    Chen, Zhiqiang | Xie, Chiyu | Chen, Yu | Wang, Moran

    Computation, Vol. 4 (2016), Iss. 1 P.15

    https://doi.org/10.3390/computation4010015 [Citations: 12]
  6. A new capillary force model implemented in lattice Boltzmann method for gas–liquid–solid three-phase flows

    Zhang, Xitong | Liu, Haihu | Zhang, Jinggang

    Physics of Fluids, Vol. 32 (2020), Iss. 10

    https://doi.org/10.1063/5.0021473 [Citations: 21]
  7. The Motion of a Neutrally Buoyant Ellipsoid Inside Square Tube Flows

    Yang, Xin | Huang, Haibo | Lu, Xiyun

    Advances in Applied Mathematics and Mechanics, Vol. 9 (2017), Iss. 2 P.233

    https://doi.org/10.4208/aamm.2015.m1376 [Citations: 7]
  8. A coupled LBM-DEM method for simulating the multiphase fluid-solid interaction problem

    Jiang, Fei | Liu, Haihu | Chen, Xian | Tsuji, Takeshi

    Journal of Computational Physics, Vol. 454 (2022), Iss. P.110963

    https://doi.org/10.1016/j.jcp.2022.110963 [Citations: 36]
  9. Lattice Boltzmann simulations of liquid CO2 displacing water in a 2D heterogeneous micromodel at reservoir pressure conditions

    Chen, Yu | Li, Yaofa | Valocchi, Albert J. | Christensen, Kenneth T.

    Journal of Contaminant Hydrology, Vol. 212 (2018), Iss. P.14

    https://doi.org/10.1016/j.jconhyd.2017.09.005 [Citations: 72]
  10. Simulation of high-viscosity-ratio multicomponent fluid flow using a pseudopotential model based on the nonorthogonal central-moments lattice Boltzmann method

    Gharibi, Farshad | Ashrafizaadeh, Mahmud

    Physical Review E, Vol. 101 (2020), Iss. 4

    https://doi.org/10.1103/PhysRevE.101.043311 [Citations: 5]
  11. Tricoupled hybrid lattice Boltzmann model for nonisothermal drying of colloidal suspensions in micropore structures

    Qin, Feifei | Mazloomi Moqaddam, Ali | Del Carro, Luca | Kang, Qinjun | Brunschwiler, Thomas | Derome, Dominique | Carmeliet, Jan

    Physical Review E, Vol. 99 (2019), Iss. 5

    https://doi.org/10.1103/PhysRevE.99.053306 [Citations: 16]
  12. Three-dimensional simulation of red blood cell particle sedimentation

    Zhou, Huajie | Chen, Wenbo | Xuan, Chengliang | Qin, Zhangrong | Wen, Binghai

    Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, Vol. 237 (2023), Iss. 11 P.2485

    https://doi.org/10.1177/09544062211064103 [Citations: 1]
  13. Interfacial settling mode and tail dynamics of spherical-particle motion through immiscible fluids interfaces

    Chen, Zhiqiang | Wang, Moran | Chen, Shiyi

    Chemical Engineering Science, Vol. 229 (2021), Iss. P.116091

    https://doi.org/10.1016/j.ces.2020.116091 [Citations: 2]
  14. Phase-field-based lattice Boltzmann model for liquid-gas-solid flow

    He, Qiang | Li, Yongjian | Huang, Weifeng | Hu, Yang | Wang, Yuming

    Physical Review E, Vol. 100 (2019), Iss. 3

    https://doi.org/10.1103/PhysRevE.100.033314 [Citations: 13]
  15. An improved lattice Boltzmann model for fluid–fluid–solid flows with high viscosity ratio

    He, Qiang | Huang, Weifeng | Yin, Yuan | Hu, Yang | Li, Yanwen | Li, Decai

    Physics of Fluids, Vol. 34 (2022), Iss. 9

    https://doi.org/10.1063/5.0107431 [Citations: 3]
  16. Pore‐scale modeling of hydromechanical coupled mechanics in hydrofracturing process

    Chen, Zhiqiang | Wang, Moran

    Journal of Geophysical Research: Solid Earth, Vol. 122 (2017), Iss. 5 P.3410

    https://doi.org/10.1002/2017JB013989 [Citations: 38]
  17. Study on the meniscus-induced motion of droplets and bubbles by a three-phase Lattice Boltzmann model

    Wei, Bei | Huang, Haibo | Hou, Jian | Sukop, Michael C.

    Chemical Engineering Science, Vol. 176 (2018), Iss. P.35

    https://doi.org/10.1016/j.ces.2017.10.025 [Citations: 35]
  18. 3D particle transport in multichannel microfluidic networks with rough surfaces

    Ryan, Duncan P. | Chen, Yu | Nguyen, Phong | Goodwin, Peter M. | Carey, J. William | Kang, Qinjun | Werner, James H. | Viswanathan, Hari S.

    Scientific Reports, Vol. 10 (2020), Iss. 1

    https://doi.org/10.1038/s41598-020-70728-1 [Citations: 9]
  19. Continuous inertial microparticle and blood cell separation in straight channels with local microstructures

    Wu, Zhenlong | Chen, Yu | Wang, Moran | Chung, Aram J.

    Lab on a Chip, Vol. 16 (2016), Iss. 3 P.532

    https://doi.org/10.1039/C5LC01435B [Citations: 119]
  20. Inertial Effects During the Process of Supercritical CO2 Displacing Brine in a Sandstone: Lattice Boltzmann Simulations Based on the Continuum‐Surface‐Force and Geometrical Wetting Models

    Chen, Yu | Valocchi, Albert J. | Kang, Qinjun | Viswanathan, Hari S.

    Water Resources Research, Vol. 55 (2019), Iss. 12 P.11144

    https://doi.org/10.1029/2019WR025746 [Citations: 51]