Fast dynamos in spherical boundary-driven flows

We numerically demonstrate the feasibility of kinematic fast dynamos for a class of time-periodic axisymmetric flows of conducting fluid confined inside a sphere. The novelty of our work is in considering the realistic flows, which are self-consistently determined from the Navier-Stokes equation wit...

Full description

Saved in:
Bibliographic Details
Published inPhysical review letters Vol. 111; no. 12; p. 125001
Main Authors Khalzov, I V, Cooper, C M, Forest, C B
Format Journal Article
LanguageEnglish
Published United States 17.09.2013
Online AccessGet more information

Cover

Loading…
More Information
Summary:We numerically demonstrate the feasibility of kinematic fast dynamos for a class of time-periodic axisymmetric flows of conducting fluid confined inside a sphere. The novelty of our work is in considering the realistic flows, which are self-consistently determined from the Navier-Stokes equation with specified boundary driving. Such flows can be achieved in a new plasma experiment, whose spherical boundary is capable of differential driving of plasma flows in the azimuthal direction. We show that magnetic fields are self-excited over a range of flow parameters such as amplitude and frequency of flow oscillations, fluid Reynolds (Re) and magnetic Reynolds (Rm) numbers. In the limit of large Rm, the growth rates of the excited magnetic fields are of the order of the advective time scales and practically independent of Rm, which is an indication of the fast dynamo.
ISSN:1079-7114
DOI:10.1103/PhysRevLett.111.125001