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Hot spine loops and the nature of a late-phase solar flare

  • Xudong Sun
  • , J. Todd Hoeksema
  • , Yang Liu
  • , Guillaume Aulanier
  • , Yingna Su
  • , Iain G. Hannah
  • , Rachel A. Hock
  • Stanford University
  • LESIA - Laboratoire d'Etudes Spatiales et d'Instrumentation en Astrophysique
  • Center for Astrophysics | Harvard & Smithsonian
  • University of Glasgow
  • Kirtland Air Force Base

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

114 Citations (Scopus)

Résumé

The fan-spine magnetic topology is believed to be responsible for many curious features in solar explosive events. A spine field line links distinct flux domains, but direct observation of such a feature has been rare. Here we report a unique event observed by the Solar Dynamic Observatory where a set of hot coronal loops (over 10 MK) connected to a quasi-circular chromospheric ribbon at one end and a remote brightening at the other. Magnetic field extrapolation suggests that these loops are partly tracers of the evolving spine field line. Continuous slipping- and null-point-type reconnections were likely at work, energizing the loop plasma and transferring magnetic flux within and across the fan quasi-separatrix layer. We argue that the initial reconnection is of the "breakout" type, which then transitioned to a more violent flare reconnection with an eruption from the fan dome. Significant magnetic field changes are expected and indeed ensued. This event also features an extreme-ultraviolet (EUV) late phase, i.e., a delayed secondary emission peak in warm EUV lines (about 2-7 MK). We show that this peak comes from the cooling of large post-reconnection loops beside and above the compact fan, a direct product of eruption in such topological settings. The long cooling time of the large arcades contributes to the long delay; additional heating may also be required. Our result demonstrates the critical nature of cross-scale magnetic coupling - topological change in a sub-system may lead to explosions on a much larger scale.

langue originaleAnglais
Numéro d'article139
journalAstrophysical Journal
Volume778
Numéro de publication2
Les DOIs
étatPublié - 1 déc. 2013
Modification externeOui

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