The Role of Magnetic Helicity in Coronal Heating
arXiv:1909.03768 · doi:10.3847/1538-4357/ab3afd
Abstract
One of the greatest challenges in solar physics is understanding the heating of the Sun's corona. Most theories for coronal heating postulate that free energy in the form of magnetic twist/stress is injected by the photosphere into the corona where the free energy is converted into heat either through reconnection or wave dissipation. The magnetic helicity associated with the twist/stress, however, is expected to be conserved and appear in the corona. In previous work we showed that helicity associated with the small-scale twists undergoes an inverse cascade via stochastic reconnection in the corona, and ends up as the observed large-scale shear of filament channels. Our ``helicity condensation'' model accounts for both the formation of filament channels and the observed smooth, laminar structure of coronal loops. In this paper, we demonstrate, using helicity- and energy-conserving numerical simulations of a coronal system driven by photospheric motions, that the model also provides a natural mechanism for heating the corona. We show that the heat generated by the reconnection responsible for the helicity condensation process is sufficient to account for the observed coronal heating. We study the role that helicity injection plays in determining coronal heating and find that, crucially, the heating rate is only weakly dependent on the net helicity preference of the photospheric driving. Our calculations demonstrate that motions with 100\% helicity preference are least efficient at heating the corona; those with 0\% preference are most efficient. We discuss the physical origins of this result and its implications for the observed corona.
Accepted by ApJ
References in corpus (7)
- Key Aspects of Coronal Heating
- Convectively driven vortex flows in the Sun
- Evidence for Wave Heating of the Quiet Sun Corona
- Power-Law Statistics Of Driven Reconnection In The Magnetically Closed Corona
- The Role of Magnetic Helicity in Structuring the Solar Corona
- The Mechanism for the Energy Buildup Driving Solar Eruptive Events
- A Combined Study of Photospheric Magnetic and Current Helicities and Subsurface Kinetic Helicities of Solar Active Regions during 2006-2013
Cited by in corpus (8)
- Modelling the solar transition region using an adaptive conduction method
- An Observational Study of a "Rosetta-Stone" Solar Eruption
- STITCH: A Subgrid-Scale Model for Energy Buildup in the Solar Corona
- On the Impulsive Heating of Quiet Solar Corona
- The effects of driving time scales on heating in a coronal arcade
- The Dynamic Coupling of Streamers and Pseudostreamers to the Heliosphere
- Nanoflare Diagnostics from Magnetohydrodynamic Heating Profiles
- A fast multi-dimensional magnetohydrodynamic formulation of the transition region adaptive conduction (TRAC) method