Universality of the Small-Scale Dynamo Mechanism
arXiv:1105.0546 · doi:10.1088/0004-637X/736/1/36
Abstract
We quantify possible differences between turbulent dynamo action in the Sun and the dynamo action studied in idealized simulations. For this purpose we compare Fourier-space shell-to-shell energy transfer rates of three incrementally more complex dynamo simulations: an incompressible, periodic simulation driven by random flow, a simulation of Boussinesq convection, and a simulation of fully compressible convection that includes physics relevant to the near-surface layers of the Sun. For each of the simulations studied, we find that the dynamo mechanism is universal in the kinematic regime because energy is transferred from the turbulent flow to the magnetic field from wavenumbers in the inertial range of the energy spectrum. The addition of physical effects relevant to the solar near-surface layers, including stratification, compressibility, partial ionization, and radiative energy transport, does not appear to affect the nature of the dynamo mechanism. The role of inertial-range shear stresses in magnetic field amplification is independent from outer-scale circumstances, including forcing and stratification. Although the shell-to-shell energy transfer functions have similar properties to those seen in mean-flow driven dynamos in each simulation studied, the saturated states of these simulations are not universal because the flow at the driving wavenumbers is a significant source of energy for the magnetic field.
16 pages, 9 figures, accepted for publication in ApJ
References in corpus (8)
- Global-Scale Turbulent Convection and Magnetic Dynamo Action in the Solar Envelope
- Turbulence and Magnetic Fields in the Large Scale Structure of the Universe
- A Substantial Amount of Hidden Magnetic Energy in the Quiet Sun
- A solar surface dynamo
- Magnetohydrodynamic Simulations of Disk Galaxy Formation: the Magnetization of The Cold and Warm Medium
- Turbulent small-scale dynamo action in solar surface simulations
- Exponentially growing solutions in homogeneous Rayleigh-Benard convection
- A hybrid MPI-OpenMP scheme for scalable parallel pseudospectral computations for fluid turbulence
Cited by in corpus (11)
- Magnetic field amplification in turbulent astrophysical plasmas
- The Turbulent Dynamo in Highly Compressible Supersonic Plasmas
- Energy transfer in compressible magnetohydrodynamic turbulence
- Energy transfers in dynamos with small magnetic Prandtl numbers
- Amplification of large-scale magnetic field in nonhelical magnetohydrodynamics
- Observed and Simulated Power Spectra of Kinetic and Magnetic Energy retrieved with 2D inversions
- Small-scale dynamos on the solar surface: dependence on magnetic Prandtl number
- Structure and dynamics of the internetwork solar chromosphere: results of a small-scale dynamo simulation
- A persistent quiet-Sun small-scale tornado. II. Oscillations
- Magnetic dynamos powered by white dwarf superficial convection
- Instrumental and Observational Artifacts in Quiet Sun Magnetic Flux Cance llation Functions