Multiparticle collision dynamics for tensorial nematodynamics

被引:26
作者
Mandal, Shubhadeep [1 ]
Mazza, Marco G. [1 ,2 ,3 ]
机构
[1] Max Planck Inst Dynam & Self Org, Fassberg 17, D-37077 Gottingen, Germany
[2] Loughborough Univ, Interdisciplinary Ctr Math Modelling, Loughborough LE11 3TU, Leics, England
[3] Loughborough Univ, Dept Math Sci, Loughborough LE11 3TU, Leics, England
关键词
NEMATIC LIQUID-CRYSTALS; FLOW; HYDRODYNAMICS; SIMULATION; ALGORITHM; SURFACE;
D O I
10.1103/PhysRevE.99.063319
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
Liquid crystals establish a nearly unique combination of thermodynamic, hydrodynamic, and topological behavior. This poses a challenge to their theoretical understanding and modeling. The arena where these effects come together is the mesoscopic (micron) scale. It is then important to develop models aimed at capturing this variety of dynamics. We have generalized the particle-based multiparticle collision dynamics (MPCD) method to model the dynamics of nematic liquid crystals. Following the Qian-Sheng theory [Phys.Rev E 58, 7475 (1998)] of nematics, the spatial and temporal variations of the nematic director field and order parameter are described by a tensor order parameter. The key idea is to assign tensorial degrees of freedom to each MPCD particle, whose mesoscopic average is the tensor order parameter. This nematic MPCD method includes backflow effect, velocity-orientation coupling, and thermal fluctuations. We validate the applicability of this method by testing (i) the nematic-isotropic phase transition, (ii) the flow alignment of the director in shear and Poiseuille flows, and (iii) the annihilation dynamics of a pair of line defects. We find excellent agreement with existing literature. We also investigate the flow field around a force dipole in a nematic liquid crystal, which represents the leading-order flow field around a force-free microswimmer. The anisotropy of the medium not only affects the magnitude of velocity field around the force dipole, but can also induce hydrodynamic torques depending on the orientation of dipole axis relative to director field. A force dipole experiences a hydrodynamic torque when the dipole axis is tilted with respect to the far-field director. The direction of hydrodynamic torque is such that the pusher(or puller-) type force dipole tends to orient along (or perpendicular to) the director field. Our nematic MPCD method can have far-reaching implications not only in modeling of nematic flows, but also to study the motion of colloids and microswimmers immersed in an anisotropic medium.
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页数:14
相关论文
共 62 条
  • [1] Transitions in Poiseuille flow of nematic liquid crystal
    Anderson, T. G.
    Mema, E.
    Kondic, L.
    Cummings, L. J.
    [J]. INTERNATIONAL JOURNAL OF NON-LINEAR MECHANICS, 2015, 75 : 15 - 21
  • [2] Introduction to liquid crystals
    Andrienko, Denis
    [J]. JOURNAL OF MOLECULAR LIQUIDS, 2018, 267 : 520 - 541
  • [3] [Anonymous], COMMUNICATION
  • [4] [Anonymous], 1995, The Physics of Liquid Crystals
  • [5] Statistical mechanics and hydrodynamics of bacterial suspensions
    Baskaran, Aparna
    Marchetti, M. Cristina
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2009, 106 (37) : 15567 - 15572
  • [6] The effect of anchoring on the nematic flow in channels
    Batista, Vera M. O.
    Blow, Matthew L.
    Telo da Gama, Margarida M.
    [J]. SOFT MATTER, 2015, 11 (23) : 4674 - 4685
  • [7] Beris A. N., 1994, THERMODYNAMICS FLOWI, V36
  • [8] No-slip boundary conditions and forced flow in multiparticle collision dynamics
    Bolintineanu, Dan S.
    Lechman, Jeremy B.
    Plimpton, Steven J.
    Grest, Gary S.
    [J]. PHYSICAL REVIEW E, 2012, 86 (06):
  • [9] TRANSIENT SHEAR-FLOW OF NEMATIC LIQUID-CRYSTALS - MANIFESTATIONS OF DIRECTOR TUMBLING
    BURGHARDT, WR
    FULLER, GG
    [J]. JOURNAL OF RHEOLOGY, 1990, 34 (06) : 959 - 992
  • [10] Computer simulation of liquid crystals
    Care, CM
    Cleaver, DJ
    [J]. REPORTS ON PROGRESS IN PHYSICS, 2005, 68 (11) : 2665 - 2700