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HOOKED FLARE RIBBONS and FLUX-ROPE-RELATED QSL FOOTPRINTS

  • Jie Zhao
  • , Stuart A. Gilchrist
  • , Guillaume Aulanier
  • , Brigitte Schmieder
  • , Etienne Pariat
  • , Hui Li
  • Purple Mountain Observatory Chinese Academy of Sciences
  • Sorbonne Univ.
  • NorthWest Research Associates, Inc.

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

We studied the magnetic topology of active region 12158 on 2014 September 10 and compared it with the observations before and early in the flare that begins at 17:21 UT (SOL2014-09-10T17:45:00). Our results show that the sigmoidal structure and flare ribbons of this active region observed by the Solar Dynamics Observatory/Atmospheric Imaging Assembly can be well reproduced from a Grad-Rubin nonlinear force-free field extrapolation method. Various inverse-S- and inverse-J-shaped magnetic field lines, which surround a coronal flux rope, coincide with the sigmoid as observed in different extreme-ultraviolet wavelengths, including its multithreaded curved ends. Also, the observed distribution of surface currents in the magnetic polarity where it was not prescribed is well reproduced. This validates our numerical implementation and setup of the Grad-Rubin method. The modeled double inverse-J-shaped quasi-separatrix layer (QSL) footprints match the observed flare ribbons during the rising phase of the flare, including their hooked parts. The spiral-like shape of the latter may be related to a complex pre-eruptive flux rope with more than one turn of twist, as obtained in the model. These ribbon-associated flux-rope QSL footprints are consistent with the new standard flare model in 3D, with the presence of a hyperbolic flux tube located below an inverse-teardrop-shaped coronal QSL. This is a new step forward forecasting the locations of reconnection and ribbons in solar flares and the geometrical properties of eruptive flux ropes.

langue originaleAnglais
Numéro d'article62
journalAstrophysical Journal
Volume823
Numéro de publication1
Les DOIs
étatPublié - 20 mai 2016
Modification externeOui

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