A statistical study of the post-impulsive-phase acceleration of flare-associated coronal mass ejections
arXiv:1002.4960 · doi:10.1088/0004-637X/712/1/752
Abstract
It is now generally accepted that the impulsive acceleration of a coronal mass ejection (CME) in the inner corona is closely correlated in time with the main energy release of the associated solar flare. In this paper, we examine in detail the post-impulsive-phase acceleration of a CME in the outer corona, which is the phase of evolution immediately following the main impulsive acceleration of the CME; this phase is believed to correspond to the decay phase of the associated flare. This observational study is based on a statistical sample of 247 CMEs that are associated with M- and X-class GOES soft X-ray flares from 1996 to 2006. We find that, from many examples of events, the CMEs associated with flares with long-decay time (or so-called long-duration flares) tend to have positive post-impulsive-phase acceleration, even though some of them have already obtained a high speed at the end of the impulsive acceleration but do not show a deceleration expected from the aerodynamic dragging of the background solar wind. On the other hand, the CMEs associated with flares of short-decay time tend to have significant deceleration. In the scattering plot of all events, there is a weak correlation between CME post-impulsive-phase acceleration and flare decay time. The CMEs deviated from the general trend are mostly slow or weak ones associated with flares of short-decay time; the deviation is caused by the relatively stronger solar wind dragging force for these events. The implications of our results on CME dynamics and CME-flare relations are discussed.
32 pages, 9 figures, accepted for publication in ApJ
Cited by in corpus (15)
- On Sun-to-Earth Propagation of Coronal Mass Ejections
- Impulsive acceleration of coronal mass ejections: I. Statistics and CME source region characteristics
- Forecasting a Coronal Mass Ejection's Altered Trajectory: ForeCAT
- A Comparative Study of Confined and Eruptive Flares in NOAA AR 10720
- Study the build-up, initiation and acceleration of 2008 April 26 coronal mass ejection observed by STEREO
- Re-flaring of a Post-Flare Loop System Driven by Flux Rope Emergence and Twisting
- Solar Flare-CME Coupling Throughout Two Acceleration Phases of a Fast CME
- Global Energetics of Solar Flares: VI. Refined Energetics of Coronal Mass Ejections
- Comparison of CME/shock propagation models with heliospheric imaging and in situ observations
- A Statistical Study of Soft X-ray Flares on Solar-type Stars
- Multi-Wavelength Observations of the Spatio-Temporal Evolution of Solar Flares with AIA/SDO: I. Universal Scaling Laws of Space and Time Parameters
- Global Energetics of Solar Flares: VII. Aerodynamic Drag in Coronal Mass Ejections
- What determine Solar Flares Producing Interplanetary Type III Radio Bursts?
- A Solar Magnetic-fan Flaring Arch Heated by Non-thermal Particles and Hot Plasma from an X-ray Jet Eruption
- Successive Coronal Mass Ejections Associated with Weak Solar Energetic Particle Events