Magnetic Complexity in Eruptive Solar Active Regions and Associated Eruption Parameters
arXiv:0712.0143 · doi:10.1029/2007GL032040
Abstract
Using an efficient magnetic complexity index in the active-region solar photosphere, we quantify the preflare strength of the photospheric magnetic polarity inversion lines in 23 eruptive active regions with flare/CME/ICME events tracked all the way from the Sun to the Earth. We find that active regions with more intense polarity inversion lines host statistically stronger flares and faster, more impulsively accelerated, CMEs. No significant correlation is found between the strength of the inversion lines and the flare soft X-ray rise times, the ICME transit times, and the peak $Dst indices of the induced geomagnetic storms. Corroborating these and previous results, we speculate on a possible interpretation for the connection between source active regions, flares, and CMEs. Further work is needed to validate this concept and uncover its physical details.
16 pages, 2 figures, 1 table. Geophys. Res. Lett., in press
References in corpus (2)
Cited by in corpus (6)
- Driving major solar flares and eruptions: a review
- Which Photospheric Characteristics are Most Relevant to Active-Region Coronal Mass Ejections?
- Quantifying solar superactive regions with vector magnetic field observations
- The correlation of fractal structures in the photospheric and the coronal magnetic field
- Spatio-temporal scaling of turbulent photospheric line-of-sight magnetic field in active region NOAA 11158
- A comparison of coronal mass ejection models with observations for two large CMEs detected during the Whole Heliosphere Interval