The Role of Magnetic Helicity in Structuring the Solar Corona
arXiv:1607.06756 · doi:10.3847/1538-4357/835/1/85
Abstract
Two of the most widely observed and yet most puzzling features of the Sun's magnetic field are coronal loops that are smooth and laminar and prominences/filaments that are strongly sheared. These two features would seem to be quite unrelated in that the loops are near their minimum-energy current-free state, whereas filaments are regions of high magnetic stress and intense electric currents. We argue that, in fact, these two features are inextricably linked in that both are due to a single process: the injection of magnetic helicity into the corona by photospheric motions and the subsequent evolution of this helicity by coronal reconnection. In this paper, we present numerical simulations of the response of a \citet{Parker72} corona to photospheric driving motions that have varying degrees of helicity preference. We obtain four main conclusions: 1) in agreement with the helicity condensation model of \citet{Antiochos13}, the inverse cascade of helicity by magnetic reconnection results in the formation of prominences/filaments localized about polarity inversion lines (PILs); 2) this same process removes most structure from the rest of the corona, resulting in smooth and laminar coronal loops; 3) the amount of remnant tangling in coronal loops is inversely dependent on the net helicity injected by the driving motions; and 4) the structure of the solar corona depends only on the helicity preference of the driving motions and not on their detailed time dependence. We discuss the implications of our results for high-resolution observations of the corona.
19 pages; 13 figures; submitted to ApJ
References in corpus (3)
Cited by in corpus (11)
- Critical Science Plan for the Daniel K. Inouye Solar Telescope (DKIST)
- Some interesting topics provoked by the solar filament research in the past decade
- Variability of the Reconnection Guide Field in Solar Flares
- The Mechanism for the Energy Buildup Driving Solar Eruptive Events
- Modeling a Coronal Mass Ejection from an Extended Filament Channel. I. Eruption and Early Evolution
- On the utility of flux rope models for CME magnetic structure below 30
- STITCH: A Subgrid-Scale Model for Energy Buildup in the Solar Corona
- Helical Twisting Number and Braiding Linkage Number of Solar Coronal Loops
- From incoherent field to coherent reconnection: understanding convection-driven coronal heating in the quiet Sun
- Quiet Sun flux rope formation via incomplete Taylor relaxation
- Nanoflare Diagnostics from Magnetohydrodynamic Heating Profiles