An overview of flux braiding experiments
Abstract
Parker has hypothesised that, in a perfectly ideal environment, complex photospheric motions acting on a continuous magnetic field will result in the formation of tangential discontinuities corresponding to singular currents. We review direct numerical simulations of the problem and find the evidence points to a tendency for thin but finite thickness current layers to form, with thickness exponentially decreasing in time. Given a finite resistivity these layers will eventually become important and cause the dynamical process of energy release. Accordingly, a body of work focusses on evolution under continual boundary driving. The coronal volume evolves into a highly dynamic but statistically steady state where quantities have a temporally and spatially intermittent nature and where the Poynting flux and dissipation are decoupled on short timescales. Although magnetic braiding is found to be a promising coronal heating mechanism much work remains to determine its true viability. Some suggestions for future study are offered.
Keywords
Cite
@article{arxiv.1411.2490,
title = {An overview of flux braiding experiments},
author = {A. L. Wilmot-Smith},
journal= {arXiv preprint arXiv:1411.2490},
year = {2023}
}
Comments
11 figures, 23 pages. To be published in Philosophical Transactions A (2015)