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Evidence for the Magnetic Breakout Model in an Equatorial Coronal-Hole Jet

Authors :
Kumar, Pankaj
Karpen, Judith T
Antiochos, Spiro K
Wyper, Peter F
Devore, C. Richard
DeForest, Craig E
Source :
The Astrophysical Journal. 854(2)
Publication Year :
2018
Publisher :
United States: NASA Center for Aerospace Information (CASI), 2018.

Abstract

Small, impulsive jets commonly occur throughout the solar corona, but are especially visible in coronal holes. Evidence is mounting that jets are part of a continuum of eruptions that extends to much larger coronal mass ejections and eruptive flares. Because coronal-hole jets originate in relatively simple magnetic structures, they offer an ideal testbed for theories of energy buildup and release in the full range of solar eruptions. We analyzed an equatorial coronal-hole jet observed by the Solar Dynamics Observatory (SDO)/AIA (Atmospheric Imaging Assembly)) on 2014 January 9 in which the magnetic-field structure was consistent with the embedded-bipole topology that we identified and modeled previously as an origin of coronal jets. In addition, this event contained a mini-filament, which led to important insights into the energy storage and release mechanisms. SDO/HMI (Solar Dynamics Observatory/Helioseismic and Magnetic Imager) magnetograms revealed footpoint motions in the primary minority-polarity region at the eruption site, but show negligible flux emergence or cancellation for at least 16 hours before the eruption. Therefore, the free energy powering this jet probably came from magnetic shear concentrated at the polarity inversion line within the embedded bipole. We find that the observed activity sequence and its interpretation closely match the predictions of the breakout jet model, strongly supporting the hypothesis that the breakout model can explain solar eruptions on a wide range of scales.

Subjects

Subjects :
Solar Physics

Details

Language :
English
ISSN :
20418213 and 20418205
Volume :
854
Issue :
2
Database :
NASA Technical Reports
Journal :
The Astrophysical Journal
Notes :
GSFC-670.0-GRAN, , NNH15CO48B
Publication Type :
Report
Accession number :
edsnas.20180002927
Document Type :
Report
Full Text :
https://doi.org/10.3847/1538-4357/aaab4f