Solar Cycle Variation of Magnetic Flux Ropes in a Quasi-Static Coronal Evolution Model
arXiv:1003.4653 · doi:10.1007/s11207-010-9546-z
Abstract
The structure of electric current and magnetic helicity in the solar corona is closely linked to solar activity over the 11-year cycle, yet is poorly understood. As an alternative to traditional current-free "potential field" extrapolations, we investigate a model for the global coronal magnetic field which is non-potential and time-dependent, following the build-up and transport of magnetic helicity due to flux emergence and large-scale photospheric motions. This helicity concentrates into twisted magnetic flux ropes, which may lose equilibrium and be ejected. Here, we consider how the magnetic structure predicted by this model-in particular the flux ropes-varies over the solar activity cycle, based on photospheric input data from six periods of cycle 23. The number of flux ropes doubles from minimum to maximum, following the total length of photospheric polarity inversion lines. However, the number of flux rope ejections increases by a factor of eight, following the emergence rate of active regions. This is broadly consistent with the observed cycle modulation of coronal mass ejections, although the actual rate of ejections in the simulation is about a fifth of the rate of observed events. The model predicts that, even at minimum, differential rotation will produce sheared, non-potential, magnetic structure at all latitudes.
18 pages, 6 figures, accepted for publication in Solar Physics
References in corpus (4)
- Modelling the Global Solar Corona: Filament Chirality Observations and Surface Simulations
- Initiation of Coronal Mass Ejections in a Global Evolution Model
- Modelling the Global Solar Corona III: Origin of the Hemispheric Pattern of Filaments
- Comparison of a Global Magnetic Evolution Model with Observations of Coronal Mass Ejections
Cited by in corpus (4)
- A Method for Data-Driven Simulations of Evolving Solar Active Regions
- Coronal Magnetic Field Evolution from 1996 to 2012: Continuous Non-Potential Simulations
- Magnetic Flux Rope Identification and Characterization from Observationally-Driven Solar Coronal Models
- Stellar Coronal Response to Differential Rotation and Flux Emergence