SIMPLIFIED MODELLING OF A THERMAL BATH, WITH APPLICATION TO A FLUID VORTEX SYSTEM

被引:3
|
作者
Dubinkina, Svetlana [1 ]
Frank, Jason [1 ]
Leimkuhler, Ben [2 ,3 ]
机构
[1] Ctr Wiskunde & Informat, NL-1090 GB Amsterdam, Netherlands
[2] Univ Edinburgh, Sch Math, Edinburgh EH9 3JZ, Midlothian, Scotland
[3] Univ Edinburgh, Maxwell Inst Math Sci, Edinburgh EH9 3JZ, Midlothian, Scotland
来源
MULTISCALE MODELING & SIMULATION | 2010年 / 8卷 / 05期
基金
英国工程与自然科学研究理事会;
关键词
thermostat methods; Nose dynamics; Bulgac-Kusnezov; generalized canonical ensembles; point vortex fluid; unresolved dynamics; TEMPERATURE MOLECULAR-DYNAMICS; CANONICAL ENSEMBLE; POINT VORTICES; MECHANICS;
D O I
10.1137/100795152
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
Based on the thermodynamic concept of a reservoir, we investigate a computational model for interaction with unresolved degrees of freedom (a thermal bath). We assume that a finite restricted system can be modelled by a generalized canonical ensemble, described by a density which is a smooth function of the energy of the restricted system. A thermostat is constructed to continuously perturb the resolved dynamics, while leaving the desired equilibrium distribution invariant. We build on a thermostatting framework developed and tested in the setting of molecular dynamics, using stochastic perturbations to control (and stabilize) the invariant measure. We also apply these techniques in the setting of a simplified point vortex flow on a disc, in which a modified Gibbs distribution (modelling a finite, rather than infinite, bath of weak vortices) provides a regularizing formulation for restricted system dynamics. Numerical experiments, effectively replacing many vortices by a few artificial degrees of freedom, are in excellent agreement with the two-scale simulations of Buhler [Phys. Fluids, 14 (2002), pp. 2139-2149].
引用
收藏
页码:1882 / 1901
页数:20
相关论文
共 50 条
  • [31] Simplified thermal model of the ITER magnet system
    Furci, Hernan
    Luongo, Cesar
    CRYOGENICS, 2014, 63 : 241 - 254
  • [32] Vortex formation on surging aerofoils with application to reverse flow modelling
    Kirk, Philip B.
    Jones, Anya R.
    JOURNAL OF FLUID MECHANICS, 2019, 859 : 59 - 88
  • [33] Water modelling study of fluid flow and mixing characteristics in bath during AOD process
    Wei, JH
    Ma, JC
    Fan, YY
    Yu, NW
    Yang, SL
    Xiang, SH
    Zhu, DP
    IRONMAKING & STEELMAKING, 1999, 26 (05) : 363 - 371
  • [34] SIMPLIFIED FLUID SUPPLY-SYSTEM FOR HOME HEMODIALYSIS
    EVANS, S
    DAWBORN, JK
    AUSTRALIAN AND NEW ZEALAND JOURNAL OF MEDICINE, 1973, 3 (04): : 430 - 430
  • [35] Thermal, coupled stresses and fluid flow modelling during depletion and injection in a stacked reservoir system
    Moreno Colin, G.M.C.
    Bakar, R.B.
    Rahman, H.
    Rodriguez Herrera, A.
    Koutsabeloulis, N.
    EAGE Workshop on Geomechanics in the Oil and Gas Industry, 2014, : 89 - 92
  • [36] Fluid particle advection in the vicinity of the Foppl vortex system
    Ryzhov, E. A.
    PHYSICS LETTERS A, 2012, 376 (45) : 3208 - 3212
  • [37] MOTION OF A SYSTEM OF VORTEX RINGS IN AN INCOMPRESSIBLE FLUID.
    Brutyan, M.A.
    Krapivskii, P.L.
    1600, (48):
  • [38] On the application of simplified rheological models of fluid in the hydraulic fracture problems
    Wrobel, Michal
    INTERNATIONAL JOURNAL OF ENGINEERING SCIENCE, 2020, 150
  • [39] A simplified kinetic and mass transfer modelling of the thermal hydrolysis of vegetable oils
    Forero-Hernandez, Hector
    Jones, Mark
    Sarup, Bent
    Abildskov, Jens
    Jensen, Anker Degn
    Sin, Gurkan
    27TH EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING, PT A, 2017, 40A : 1177 - 1182
  • [40] A thermal equilibrium approach to modelling multiple solid-fluid interactions with phase transitions, with application to cavitation
    Wilkinson, Simon D.
    Barton, Philip T.
    Nikiforakis, Nikolaos
    INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2022, 157