Quantifying the effect of turbulent magnetic diffusion on the growth rate of the magneto-rotational instability
arXiv:1310.3157 · doi:10.1051/0004-6361/201322837
Abstract
In astrophysics, turbulent diffusion is often used in place of microphysical diffusion to avoid resolving the small scales. However, we expect this approach to break down when time and length scales of the turbulence become comparable with other relevant time and length scales in the system. Turbulent diffusion has previously been applied to the magneto-rotational instability (MRI), but no quantitative comparison of growth rates at different turbulent intensities has been performed. We investigate to what extent turbulent diffusion can be used to model the effects of small-scale turbulence on the kinematic growth rates of the MRI, and how this depends on angular velocity and magnetic field strength. We use direct numerical simulations in three-dimensional shearing boxes with periodic boundary conditions in the spanwise direction and additional random plane-wave volume forcing to drive a turbulent flow at a given length scale. We estimate the turbulent diffusivity using a mixing length formula and compare with results obtained with the test-field method. It turns out that the concept of turbulent diffusion is remarkably accurate in describing the effect of turbulence on the growth rate of the MRI. No noticeable breakdown of turbulent diffusion has been found, even when time and length scales of the turbulence become comparable with those imposed by the MRI itself. On the other hand, quenching of turbulent magnetic diffusivity by the magnetic field is found to be absent. Turbulence reduces the growth rate of the MRI in a way that is the same as microphysical magnetic diffusion.
8 pages, 9 figures, submitted to Astronomy & Astrophysics
References in corpus (18)
- MHD simulations of the magnetorotational instability in a shearing box with zero net flux. II. The effect of transport coefficients
- Mean-field concept and direct numerical simulations of rotating magnetoconvection and the geodynamo
- Generation of Magnetic Field by Combined Action of Turbulence and Shear
- Turbulent magnetic Prandtl number and magnetic diffusivity quenching from simulations
- Kinematic alpha effect in isotropic turbulence simulations
- Scale dependence of alpha effect and turbulent diffusivity
- Mach number dependence of the onset of dynamo action
- Magnetic fluctuations and formation of large-scale inhomogeneous magnetic structures in a turbulent convection
- Nonlinear magnetic diffusivity and alpha tensors in helical turbulence
- Memory effects in turbulent transport
- Viscous, Resistive Magnetorotational Modes
- Numerical experiments on dynamo action in sheared and rotating turbulence
- Turbulent diffusion with rotation or magnetic fields
- Numerical study of large-scale vorticity generation in shear-flow turbulence
- The role of diffusivity quenching in flux-transport dynamo models
- On the magnetic quenching of mean-field effects in supersonic interstellar turbulence
- Dynamo effects in magnetorotational turbulence with finite thermal diffusivity
- Interaction of the magnetorotational instability with hydrodynamic turbulence in accretion disks
Cited by in corpus (6)
- Characterizing the mean-field dynamo in turbulent accretion disks
- Intense bipolar structures from stratified helical dynamos
- Saturation of the magnetorotational instability and the origin of magnetically elevated accretion discs
- Turbulent viscosity and effective magnetic Prandtl number from simulations of isotropically forced turbulence
- Interaction of large- and small-scale dynamos in isotropic turbulent flows from GPU-accelerated simulations
- Magnetorotational instability in a solar near-surface mean-field dynamo