The Minimal Helicity of Solar Coronal Magnetic Fields
arXiv:2007.10649 · doi:10.3847/2041-8213/aba762
Abstract
Potential field extrapolations are widely used as minimum-energy models for the Sun's coronal magnetic field. As the reference to which other magnetic fields are compared, they have -- by any reasonable definition -- no global (signed) magnetic helicity. Here we investigate the internal topological structure that is not captured by the global helicity integral, by splitting it into individual field line helicities. These are computed using potential field extrapolations from magnetogram observations over Solar Cycle 24, as well as for a simple illustrative model of a single bipolar region in a dipolar background. We find that localised patches of field line helicity arise primarily from linking between strong active regions and their overlying field, so that the total unsigned helicity correlates with the product of photospheric and open fluxes. Within each active region, positive and negative helicity may be unbalanced, but the signed helicity is only around a tenth of the unsigned helicity. Interestingly, in Cycle 24, there is a notable peak in unsigned helicity caused by a single large active region. On average, the total unsigned helicity at the resolution considered is approximately twice the typical signed helicity of a single real active region, according to non-potential models in the literature.
11 pages, 5 figures, accepted for publication in ApJ Letters
References in corpus (11)
- Why Is the Great Solar Active Region 12192 Flare-Rich But CME-Poor?
- Magnetic connectivity of the ecliptic plane within 0.5 AU : PFSS modeling of the first PSP encounter
- The Effect of "Rogue" Active Regions on the Solar Cycle
- Evolution of field line helicity during magnetic reconnection
- The Solar Cycle Variation of Topological Structures in the Global Solar Corona
- Modelling the Global Solar Corona III: Origin of the Hemispheric Pattern of Filaments
- The Mechanism for the Energy Buildup Driving Solar Eruptive Events
- Magnetic Flux Rope Identification and Characterization from Observationally-Driven Solar Coronal Models
- Evolution of Magnetic Helicity in Solar Cycle 24
- Three-Year Global Survey of Coronal Null Points from Potential-Field-Source-Surface (PFSS) Modeling and Solar Dynamics Observatory (SDO) Observations
- Relative magnetic field line helicity