Comparisons and Connections between Mean Field Dynamo Theory and Accretion Disc Theory
arXiv:0911.2315 · doi:10.1002/asna.200911304
Abstract
The origin of large scale magnetic fields in astrophysical rotators, and the conversion of gravitational energy into radiation near stars and compact objects via accretion have been subjects of active research for a half century. Magnetohydrodynamic turbulence makes both problems highly nonlinear, so both subjects have benefitted from numerical simulations.However, understanding the key principles and practical modeling of observations warrants testable semi-analytic mean field theories that distill the essential physics. Mean field dynamo (MFD) theory and alpha-viscosity accretion disc theory exemplify this pursuit. That the latter is a mean field theory is not always made explicit but the combination of turbulence and global symmetry imply such. The more commonly explicit presentation of assumptions in 20th century textbook MFDT has exposed it to arguably more widespread criticism than incurred by 20th century alpha-accretion theory despite complementary weaknesses. In the 21st century however, MFDT has experienced a breakthrough with a dynamical saturation theory that consistently agrees with simulations. Such has not yet occurred in accretion disc theory, though progress is emerging. Ironically however, for accretion engines, MFDT and accretion theory are presently two artificially uncoupled pieces of what should be a single coupled theory. Large scale fields and accretion flows are dynamically intertwined because large scale fields likely play a key role in angular momentum transport. I discuss and synthesize aspects of recent progress in MFDT and accretion disc theory to suggest why the two likely conspire in a unified theory.
(added references and a brief associated discussion of the sign of the electromotive force in disc simulation) 9 pages, to appear in Astron. Nachr., Vol. 331, Issue 1, 2010
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Cited by in corpus (15)
- Turbulence and Steady Flows in 3D Global Stratified MHD Simulations of Accretion Disks
- Characterizing the mean-field dynamo in turbulent accretion disks
- Magnetorotational instability driven dynamos at low magnetic Prandtl numbers
- Large Scale Azimuthal Structures Of Turbulence In Accretion Disks - Dynamo triggered variability of accretion
- Nonlinear energy transfers in accretion discs MRI turbulence. I-Net vertical field case
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