English

Magnetic Reconnection Rates and Energy Release in a Confined X-class Flare

Solar and Stellar Astrophysics 2015-11-04 v2

Abstract

We study the energy-release process in the confined X1.6 flare that occurred on 22 October 2014 in AR 12192. Magnetic-reconnection rates and reconnection fluxes are derived from three different data sets: space-based data from the Atmospheric Imaging Assembly (AIA) 1600 {\AA} filter onboard the Solar Dynamics Observatory (SDO) and ground-based Hα\alpha and Ca II K filtergrams from Kanzelh\"ohe Observatory. The magnetic-reconnection rates determined from the three data sets all closely resemble the temporal profile of the hard X-rays measured by the Ramaty High Energy Solar Spectroscopic Imager (RHESSI), which are a proxy for the flare energy released into high-energy electrons. The total magnetic-reconnection flux derived lies between 4.1×10214.1 \times 10^{21} Mx (AIA 1600 {\AA}) and 7.9×10217.9 \times 10^{21} Mx (Hα\alpha), which corresponds to about 2 to 4% of the total unsigned flux of the strong source AR. Comparison of the magnetic-reconnection flux dependence on the GOES class for 27 eruptive events collected from previous studies (covering B to >>X10 class flares) reveals a correlation coefficient of 0.8\approx 0.8 in double-logarithmic space. The confined X1.6 class flare under study lies well within the distribution of the eruptive flares. The event shows a large initial separation of the flare ribbons and no separation motion during the flare. In addition, we note enhanced emission at flare-ribbon structures and hot loops connecting these structures before the event starts. These observations are consistent with the emerging-flux model, where newly emerging small flux tubes reconnect with pre-existing large coronal loops.

Keywords

Cite

@article{arxiv.1509.07089,
  title  = {Magnetic Reconnection Rates and Energy Release in a Confined X-class Flare},
  author = {A. M. Veronig and W. Polanec},
  journal= {arXiv preprint arXiv:1509.07089},
  year   = {2015}
}

Comments

in press for Solar Physics; 24 pages, 10 figures