Why, how and when MHD turbulence at low becomes three-dimensional
arXiv:1305.7105 · doi:10.1017/jfm.2014.620
Abstract
MHD turbulence at low Magnetic Reynolds number is experimentally investigated by studying a liquid metal flow in a cubic domain. We focus on the mechanisms that determine whether the flow is quasi-2D, 3D or in any intermediate state. To this end, forcing is applied by injecting a DC current through one wall of the cube only, to drive vortices spinning along the magnetic field. Depending on the intensity of the externally applied magnetic field, these vortices extend part or all of the way through the cube. Driving the flow in this way allows us to precisely control not only the forcing intensity but also its dimensionality. A comparison with the theoretical analysis of this configuration singles out the influences of the walls and of the forcing on the flow dimensionality, which is characterised in several ways. First, when inertia drives three-dimensionality, the velocity near the wall where current is injected scales as . Second, when the distance over which momentum diffuses under the action of the Lorentz force reaches the channel width , the velocity near the opposite wall follows a similar law with a correction factor . When , by contrast, the opposite wall has less influence on the flow and . The central role played by the ratio is confirmed by experimentally verifying Sommeria & Moreau (1982)'s scaling ( is the interaction parameter) and finally, the nature of the three-dimensionality is further clarified by distinguishing weak and strong three-dimensionalities. It is found that both vanish only asymptotically in the limit . This provides evidence that because of the no-slip walls, 1) the transition between quasi-2D and 3D turbulence does not result from a global instability of the flow, and 2) it doesn't occur simultaneously at all scales.
References in corpus (6)
- An effective two-dimensional model for MHD flows with transverse magnetic field
- Turbulence damping as a measure of the flow dimensionality
- Large-scale intermittency of liquid-metal channel flow in a magnetic field
- Numerical simulations of an effective two-dimensional model for flows with a transverse magnetic field
- Three-dimensionality in quasi-two dimensional flows: recirculations and barrel effects
- Direct and inverse pumping in flows with homogeneous and non-homogeneous swirl
Cited by in corpus (22)
- Cascades and transitions in turbulent flows
- Anisotropy in Quasi-Static Magnetohydrodynamic Turbulence
- Variable energy flux in turbulence
- Inverse and direct energy cascades in 3D MHD turbulence at low-Rm
- Decay of turbulence in a liquid metal duct flow with transverse magnetic field
- Do magnetic fields enhance turbulence at low magnetic Reynolds number ?
- Direct numerical simulation of quasi-two-dimensional MHD turbulent shear flows
- Little Earth Experiment: an instrument to model planetary cores
- From three-dimensional to quasi-two-dimensional: Transient growth in magnetohydrodynamic duct flows
- Dimensionality, secondary flows and helicity in low-Rm MHD vortices
- Controlling the dimensionality of low-Rm MHD turbulence experimentally
- Turbulence in electromagnetically-driven Keplerian flows
- Subcritical transition to turbulence in quasi-two-dimensional shear flows
- Experimental study of submerged liquid metal jet in transverse magnetic field
- Mean flow anisotropy without waves in rotating turbulence
- Seven decades of exploring planetary interiors with rotating convection experiments
- Transition between advection and inertial wave propagation in rotating turbulence
- Magnetic Dissipation of Near-Wall Turbulent Coherent Structures in Magnetohydrodynamic Pipe Flows
- PIV mapping of pressure and velocity fields in the plane magnetohydrodynamic Couette flow
- Bounds on the attractor dimension for magnetohydrodynamic channel flow with parallel magnetic field at low magnetic Reynolds number
- Effective drag in rotating, poorly conducting plasma turbulence
- Exact two-dimensionalization of low-magnetic-Reynolds-number flows subject to a strong magnetic field