The correlation of coronal mass ejections with energetic flare proton events
S. W. Kahler, R. E. McGuire, D. V. Reames, T. T. von Rosenvinge, N. R. Sheeley, R. A. Howard, D. J. Michels, M. J. Koomen
Abstract
S. W. Kahler, R. E. McGuire, D. V. Reames, T. T. von Rosenvinge, N. R. Sheeley, R. A. Howard, D. J. Michels, M. J. Koomen
Abstract
Proton events of energies of at least 4 MeV presumed due to solar flares are compared with coronal mass ejections (CMEs) observed with an orbiting coronagraph. H alpha flares are associated with 27 of the 50 flare proton events of the study. Each of these 27 flares is then associated temporally and spatially with a CME, confirming the earlier conclusion, based on Skylab data, that a CME may be a necessary condition for a flare proton event. Peak 4-22 MeV proton fluxes correlate with both the speeds and the angular sizes of the associated CMEs. CMEs of larger angular sizes are more likely to be loops or fans rather than jets or spikes and are more likely to intersect the ecliptic.
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Proton events of energies of at least 4 MeV presumed due to solar flares are compared with coronal mass ejections (CMEs) observed with an orbiting coronagraph. H alpha flares are associated with 27 of the 50 flare proton events of the study. Each of these 27 flares is then associated temporally and spatially with a CME, confirming the earlier conclusion, based on Skylab data, that a CME may be a necessary condition for a flare proton event. Peak 4-22 MeV proton fluxes correlate with both the speeds and the angular sizes of the associated CMEs. CMEs of larger angular sizes are more likely to be loops or fans rather than jets or spikes and are more likely to intersect the ecliptic.
Key concepts: Coronal mass ejection, Physics, Flare, Solar flare, Astrophysics, Coronagraph, Proton, Astronomy