A Model for Energy Buildup and Eruption Onset in Coronal Mass Ejections
arXiv:1905.13218 · doi:10.3847/1538-4357/ab262a
Abstract
Coronal mass ejections (CMEs) and eruptive flares (EFs) are the most energetic explosions in the solar system. Their underlying origin is the free energy that builds up slowly in the sheared magnetic field of a filament channel. We report the first end-to-end numerical simulation of a CME/EF, from zero-free-energy initial state through filament-channel formation to violent eruption, driven solely by the magnetic-helicity condensation process. Helicity is the topological measure of linkages between magnetic flux systems, and is conserved in the corona, building up inexorably until it is ejected into interplanetary space. Numerous investigations have demonstrated that helicity injected by small-scale vortical motions, such as those observed in the photosphere, undergoes an inverse cascade from small scales to large, `condensing' at magnetic-polarity boundaries. Our new results verify that this process forms a filament channel within a compact bipolar region embedded in a background dipole field, and show for the first time that a fast CME eventually occurs via the magnetic-breakout mechanism. We further show that the trigger for explosive eruption is reconnection onset in the flare current sheet that develops above the polarity inversion line: this reconnection forms flare loops below the sheet and a CME flux rope above, and initiates high-speed outward flow of the CME. Our findings have important implications for magnetic self-organization and explosive behavior in solar and other astrophysical plasmas, and for understanding and predicting explosive solar activity.
Published in ApJ, 10 pages, 4 figures
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Cited by in corpus (14)
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- The Acceleration of Charged Particles and Formation of Power-law Energy Spectra in Nonrelativistic Magnetic Reconnection
- Escape of Flare-accelerated Particles in Solar Eruptive Events
- Variability of the Reconnection Guide Field in Solar Flares
- A Model for the Coupled Eruption of a Pseudostreamer and Helmet Streamer
- Plasmoids, Flows, and Jets During Magnetic Reconnection in a Failed Solar Eruption
- Toward Improved Understanding of Magnetic Fields Participating in Solar Flares: Statistical Analysis of Magnetic Field within Flare Ribbons
- Modeling a Coronal Mass Ejection from an Extended Filament Channel. I. Eruption and Early Evolution
- Linking the Sun to the Heliosphere Using Composition Data and Modelling. A Test Case with a Coronal Jet
- STITCH: A Subgrid-Scale Model for Energy Buildup in the Solar Corona
- Heating and Eruption of a Solar Circular Ribbon Flare
- Nanoflare Diagnostics from Magnetohydrodynamic Heating Profiles
- Rapid Evolution of Bald Patches in a Major Solar Eruption