Large-scale dynamo action of magnetized Taylor-Couette flows
Abstract
A conducting Taylor-Couette flow with quasi-Keplerian rotation law containing a toroidal magnetic field serves as a mean-field dynamo model of the Tayler-Spruit-type. The flows are unstable against nonaxisymmetric perturbations which form electromotive forces defining effect and eddy diffusivity. If both degenerated modes with are excited with the same power then the global effect vanishes and a dynamo cannot work. It is shown, however, that the Tayler instability produces finite effects if only an isolated mode is considered but this intrinsic helicity of the single-mode is too low for an dynamo. Moreover, an dynamo model with quasi-Keplerian rotation requires a minimum magnetic Reynolds number of rotation of to work. Whether it really works depends on assumptions about the turbulence energy. For a steeper-than-quadratic dependence of the turbulence intensity on the magnetic field, however, dynamos are only excited if the resulting magnetic eddy diffusivity approximates its microscopic value, . By basically lower or larger eddy diffusivities the dynamo instability is suppressed.
Keywords
Cite
@article{arxiv.1911.05105,
title = {Large-scale dynamo action of magnetized Taylor-Couette flows},
author = {G. Rüdiger and M. Schultz},
journal= {arXiv preprint arXiv:1911.05105},
year = {2020}
}
Comments
12 pages, 12 figures