On the effect of rotation on magnetohydrodynamic turbulence at high magnetic Reynolds number

被引:15
|
作者
Favier, B. F. N. [1 ]
Godeferd, F. S. [1 ]
Cambon, C. [1 ]
机构
[1] Univ Lyon, Lab Mecan Fluides & Acoust, UMR 5509, Ecole Cent Lyon,CNRS,UCBL,INSA, F-69134 Ecully, France
来源
关键词
Turbulence; Magnetohydrodynamics; Rotation; Inertial and Alfven waves; Direct numerical simulation; NUMERICAL-SIMULATION; MHD TURBULENCE; ANISOTROPY; FIELD;
D O I
10.1080/03091929.2010.544655
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
This article is focused on the dynamics of a rotating electrically conducting fluid in a turbulent state. As inside the Earth's core or in various industrial processes, a flow is altered by the presence of both background rotation and a large scale magnetic field. In this context, we present a set of 3D direct numerical simulations of incompressible decaying turbulence. We focus on parameters similar to the ones encountered in geophysical and astrophysical flows, so that the Rossby number is small, the interaction parameter is large, but the Elsasser number, defining the ratio between Coriolis and Lorentz forces, is about unity. These simulations allow to quantify the effect of rotation and thus inertial waves on the growth of magnetic fluctuations due to Alfven waves. Rotation prevents the occurence of equipartition between kinetic and magnetic energies, with a reduction of magnetic energy at decreasing Elsasser number Lambda. It also causes a decrease of energy transfer mediated by cubic correlations. In terms of flow structure, a decrease of Lambda corresponds to an increase in the misalignment of velocity and magnetic field.
引用
收藏
页码:89 / 111
页数:23
相关论文
共 50 条
  • [31] Modeling of High Reynolds Number Flows with Solid Body Rotation or Magnetic Fields
    Pouquet, Annick
    Baerenzung, Julien
    Graham, Jonathan Pietarila
    Mininni, Pablo
    Politano, Helene
    Ponty, Yannick
    [J]. TURBULENCE AND INTERACTIONS, 2010, 110 : 287 - +
  • [32] Effective eddy viscosities in implicit modeling of decaying high Reynolds number turbulence with and without rotation
    Domaradzki, JA
    Radhakrishnan, S
    [J]. FLUID DYNAMICS RESEARCH, 2005, 36 (4-6) : 385 - 406
  • [33] The effect of Reynolds number on boundary layer turbulence
    DeGraaff, DB
    Webster, DR
    Eaton, JK
    [J]. EXPERIMENTAL THERMAL AND FLUID SCIENCE, 1998, 18 (04) : 341 - 346
  • [34] Do magnetic fields enhance turbulence at low magnetic Reynolds number?
    Potherat, Alban
    Klein, Rico
    [J]. PHYSICAL REVIEW FLUIDS, 2017, 2 (06):
  • [35] Reynolds number dependence of Lagrangian dispersion in direct numerical simulations of anisotropic magnetohydrodynamic turbulence
    Pratt, J.
    Busse, A.
    Mueller, W-C
    [J]. JOURNAL OF FLUID MECHANICS, 2022, 944
  • [36] Shear effect on pressure and particle acceleration in high-Reynolds-number turbulence
    Tsuji, Yoshiyuki
    Fransson, Jens H. M.
    Alfredsson, P. Henrik.
    Johansson, Arne V.
    [J]. IUTAM SYMPOSIUM ON COMPUTATIONAL PHYSICS AND NEW PERSPECTIVES IN TURBULENCE, 2008, 4 : 177 - +
  • [37] Ideal homogeneous magnetohydrodynamic turbulence in the presence of rotation and a mean magnetic field
    Shebalin, John V.
    [J]. JOURNAL OF PLASMA PHYSICS, 2006, 72 (04) : 507 - 524
  • [38] Turbulence statistics in Couette flow at high Reynolds number
    Pirozzoli, Sergio
    Bernardini, Matteo
    Orlandi, Paolo
    [J]. JOURNAL OF FLUID MECHANICS, 2014, 758 : 327 - 343
  • [39] Intermittency exponent in high-Reynolds number turbulence
    Tsuji, Y
    [J]. Progress in Turbulence, 2005, 101 : 67 - 70
  • [40] Circulation in High Reynolds Number Isotropic Turbulence is a Bifractal
    Iyer, Kartik P.
    Sreenivasan, Katepalli R.
    Yeung, P. K.
    [J]. PHYSICAL REVIEW X, 2019, 9 (04):