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The Sun’s Non-Potential Corona over Solar Cycle 24

Yeates, Anthony R.

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Abstract

The global magnetic field in the solar corona is known to contain free magnetic energy and magnetic helicity above that of a current-free (potential) state. But the strength of this non-potentiality and its evolution over the solar cycle remain uncertain. Here we model the corona over Solar Cycle 24 using a simplified magneto-frictional model that retains the magnetohydrodynamic induction equation but assumes relaxation towards force-free equilibrium, driven by solar surface motions and flux emergence. The model is relatively conservative compared to some others in the literature, with free energy approximately 20 – 25% of the potential field energy. We find that unsigned helicity is about a factor 10 higher at Maximum than Minimum, while free magnetic energy shows an even greater increase. The cycle averages of these two quantities are linearly correlated, extending a result found previously for active regions. Also, we propose a practical measure of eruptivity for these simulations, and show that this increases concurrently with the sunspot number, in accordance with observed coronal mass ejection rates. Whilst shearing by surface motions generates 50% or more of the free energy and helicity in the corona, we show that active regions must emerge with their own internal helicity otherwise the eruptivity is substantially reduced and follows the wrong pattern over time.

Citation

Yeates, A. R. (2024). The Sun’s Non-Potential Corona over Solar Cycle 24. Solar Physics, 299(6), Article 83. https://doi.org/10.1007/s11207-024-02328-5

Journal Article Type Article
Acceptance Date May 23, 2024
Online Publication Date Jun 17, 2024
Publication Date Jun 1, 2024
Deposit Date May 23, 2024
Publicly Available Date Jun 1, 2024
Journal Solar Physics
Print ISSN 0038-0938
Publisher Springer
Peer Reviewed Peer Reviewed
Volume 299
Issue 6
Article Number 83
DOI https://doi.org/10.1007/s11207-024-02328-5
Keywords Helicity, Solar cycle, Corona, Magnetic fields, Models, Magnetic
Public URL https://durham-repository.worktribe.com/output/2456792

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