Molecular dynamics lattice gas equilibrium distribution function for Lennard-Jones particles

被引:1
|
作者
Pachalieva, Aleksandra [1 ,2 ]
Wagner, Alexander J. [3 ]
机构
[1] Los Alamos Natl Lab, Ctr Nonlinear Studies, Los Alamos, NM 87545 USA
[2] Tech Univ Munich, Dept Mech Engn, D-85748 Garching, Germany
[3] North Dakota State Univ, Dept Phys, Fargo, ND 58108 USA
来源
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES | 2021年 / 379卷 / 2208期
关键词
molecular dynamics; lattice gas method; lattice Boltzmann method; coarse-graining; BOLTZMANN METHOD; MODEL;
D O I
10.1098/rsta.2020.0404
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The molecular dynamics lattice gas (MDLG) method maps a molecular dynamics (MD) simulation onto a lattice gas using a coarse-graining procedure. This is a novel fundamental approach to derive the lattice Boltzmann method (LBM) by taking a Boltzmann average over the MDLG. A key property of the LBM is the equilibrium distribution function, which was originally derived by assuming that the particle displacements in the MD simulation are Boltzmann distributed. However, we recently discovered that a single Gaussian distribution function is not sufficient to describe the particle displacements in a broad transition regime between free particles and particles undergoing many collisions in one time step. In a recent publication, we proposed a Poisson weighted sum of Gaussians which shows better agreement with the MD data. We derive a lattice Boltzmann equilibrium distribution function from the Poisson weighted sum of Gaussians model and compare it to a measured equilibrium distribution function from MD data and to an analytical approximation of the equilibrium distribution function from a single Gaussian probability distribution function. This article is part of the theme issue 'Progress in mesoscale methods for fluid dynamics simulation'.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Calculation of the transport properties of a dilute gas consisting of Lennard-Jones chains
    Hellmann, Robert
    Riesco, Nicolas
    Vesovic, Velisa
    JOURNAL OF CHEMICAL PHYSICS, 2013, 138 (08)
  • [32] A mixed alchemical and equilibrium dynamics to simulate hetrogeneous dense fluids: Illustration for Lennard-Jones mixtures and phospholipid membranes
    Fathizadeh, Arman
    Elber, Ron
    JOURNAL OF CHEMICAL PHYSICS, 2018, 149 (07)
  • [33] Phase diagram and universality of the Lennard-Jones gas-liquid system
    Watanabe, Hiroshi
    Ito, Nobuyasu
    Hu, Chin-Kun
    JOURNAL OF CHEMICAL PHYSICS, 2012, 136 (20)
  • [34] Scaling of the dynamics of flexible Lennard-Jones chains: Effects of harmonic bonds
    Veldhorst, Arno A.
    Dyre, Jeppe C.
    Schroder, Thomas B.
    JOURNAL OF CHEMICAL PHYSICS, 2015, 143 (19)
  • [35] Molecular dynamic simulation and equation of state of Lennard-Jones chain fluids
    Jaeeon Chang
    Hwayong Kim
    Korean Journal of Chemical Engineering, 1998, 15 : 544 - 551
  • [36] Molecular Simulation of Pervaporation of a Lennard-Jones Mixture Using a Crystalline Membrane
    Klinov, A., V
    Anashkin, I. P.
    Razinov, A., I
    Minibaeva, L. R.
    THEORETICAL FOUNDATIONS OF CHEMICAL ENGINEERING, 2019, 53 (04) : 472 - 486
  • [37] Molecular Simulation of Pervaporation of a Lennard-Jones Mixture Using a Crystalline Membrane
    A. V. Klinov
    I. P. Anashkin
    A. I. Razinov
    L. R. Minibaeva
    Theoretical Foundations of Chemical Engineering, 2019, 53 : 472 - 486
  • [38] Self-Consistent Set of Lennard-Jones Potential Parameters for Molecular Dynamics Simulations of Oxide Materials
    Makarov, G. I.
    Shilkova, K. S.
    Shunailov, A. V.
    Pavlov, P. V.
    Makarova, T. M.
    GLASS PHYSICS AND CHEMISTRY, 2023, 49 (04) : 354 - 363
  • [39] Molecular dynamics simulation of the forces between colloidal nanoparticles in Lennard-Jones and n-decane solvent
    Fichthorn, Kristen A.
    Qin, Yong
    GRANULAR MATTER, 2008, 10 (02) : 105 - 111
  • [40] Nonlocal heat transfer in two-dimensional Lennard-Jones crystal: Application of the molecular dynamics method
    Ovchinnikov, M. N.
    Kushtanova, G. G.
    Results in Physics, 2016, 6 : 258 - 262