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A Unified Computational Model for Solar and Stellar FlaresWe present a unified computational framework that can be used to describe impulsive flares on the Sun and on dMe stars. The models assume that the flare impulsive phase is caused by a beam of charged particles that is accelerated in the corona and propagates downward depositing energy and momentum along the way. This rapidly heats the lower stellar atmosphere causing it to explosively expand and dramatically brighten. Our models consist of flux tubes that extend from the sub-photosphere into the corona. We simulate how flare-accelerated charged particles propagate down one-dimensional flux tubes and heat the stellar atmosphere using the Fokker-Planck kinetic theory. Detailed radiative transfer is included so that model predictions can be directly compared with observations. The flux of flare-accelerated particles drives return currents which additionally heat the stellar atmosphere. These effects are also included in our models. We examine the impact of the flare-accelerated particle beams on model solar and dMe stellar atmospheres and perform parameter studies varying the injected particle energy spectra. We find the atmospheric response is strongly dependent on the accelerated particle cutoff energy and spectral index.
Document ID
20160005852
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Allred, Joel C.
(NASA Goddard Space Flight Center Greenbelt, MD United States)
Kowalski, Adam F.
(Maryland Univ. College Park, MD, United States)
Carlsson, Mats
(Oslo Univ. Norway)
Date Acquired
May 5, 2016
Publication Date
August 13, 2015
Publication Information
Publication: The Astrophysical Journal
Publisher: IOP Science
Volume: 809
Issue: 1
e-ISSN: 2041-8213
Subject Category
Solar Physics
Report/Patent Number
GSFC-E-DAA-TN31872
Funding Number(s)
CONTRACT_GRANT: NNG11PL02A
Distribution Limits
Public
Copyright
Other
Keywords
radiative transfer
sun
flares

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