Waiting Times of Quasi-homologous Coronal Mass Ejections from Super Active Regions
arXiv:1301.0988 · doi:10.1088/2041-8205/763/2/L43
Abstract
Why and how may some active regions (ARs) frequently produce coronal mass ejections (CMEs)? It is one of the key questions to deepen our understanding of the mechanisms and processes of energy accumulation and sudden release in ARs and to improve our capability of space weather prediction. Although some case studies have been made, the question is still far from fully answered. This issue is now being tried to address statistically through an investigation of waiting times of quasi-homologous CMEs from super ARs in solar cycle 23. It is found that the waiting times of quasi-homologous CMEs have a two-component distribution with a separation at about 18 hours. The first component is a Gaussian-like distribution with a peak at about 7 hours, which indicates a tight physical connection between these quasi-homologous CMEs. The likelihood of occurrences of two or more CMEs faster than 1200 km s-1 from the same AR within 18 hours is about 20%. Furthermore, the correlation analysis among CME waiting times, CME speeds and CME occurrence rates reveals that these quantities are independent to each other, suggesting that the perturbation by preceding CMEs rather than free energy input be the direct cause of quasi-homologous CMEs. The peak waiting time of 7 hours probably characterize the time scale of the growth of instabilities triggered by preceding CMEs. This study uncovers more clues from a statistical perspective for us to understand quasi-homologous CMEs as well as CME-rich ARs.
6 pages, 5 figures
References in corpus (8)
- Evolution of Magnetic Field and Energy in A Major Eruptive Active Region Based on SDO/HMI Observation
- Driving major solar flares and eruptions: a review
- A model for magnetically coupled sympathetic eruptions
- Magnetic Field Confinement in the Corona: The Role of Magnetic Helicity Accumulation
- Statistical Study of Coronal Mass Ejection Source Locations: Understanding CMEs Viewed in Coronagraphs
- An Extreme Solar Event of 20 January 2005: Properties of the Flare and the Origin of Energetic Particles
- On the injection of helicity by shearing motion of fluxes in relation to Flares and CMEs
- On The Gas Temperature of Molecular Cloud Cores
Cited by in corpus (15)
- The Interaction of Successive Coronal Mass Ejections: A Review
- CME-CME Interactions as Sources of CME Geo-effectiveness: The Formation of the Complex Ejecta and Intense Geomagnetic Storm in Early September 2017
- Rapid buildup of a magnetic flux rope during a confined X2.2 class flare in NOAA AR 12673
- Homologous Flux Ropes Observed by SDO/AIA
- Homologous large-amplitude Nonlinear fast-mode Magnetosonic Waves Driven by Recurrent Coronal Jets
- Unambiguous Evidence of Filament Splitting-Induced Partial Eruptions
- Recurrent CME-like eruptions in emerging flux regions. I. On the mechanism of eruptions
- A comparative study between a failed and a successful eruption initiated from the same polarity inversion line in AR 11387
- The causes of quasi-homologous CMEs
- The Poissonian Origin of Power Laws in Solar Flare Waiting Time Distributions
- Clustering of fast Coronal Mass Ejections during the solar cycles 23 and 24 and implications for CME-CME interactions
- The Solar Memory From Hours to Decades
- Recurrent CME-like Eruptions in Emerging Flux Regions. II. Scaling of Energy and Collision of Successive Eruptions
- Role of CME clusters and CME-CME interactions in producing sustained -ray emission
- The Relationship between the Kinematics of Coronal Mass Ejections and the Brightness of the Corona