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The F-CHROMA Grid of 1D RADYN Flare ModelsContext. Solar flares are the result of the sudden release of magnetic energy in the corona. Much of this energy goes into accelerating charged particles to high velocity. These particles travel along the magnetic field and the energy is dissipated when the density gets high enough, primarily in the solar chromosphere. Modelling this region is difficult because the radiation energy balance is dominated by strong, optically thick spectral lines.

Aims. Our aim is to provide the community with realistic simulations of a flaring loop with an emphasis on the detailed treatment of the chromospheric energy balance. This will enable a detailed comparison of existing and upcoming observations with synthetic observables from the simulations, thereby elucidating the complex interactions in a flaring chromosphere.

Methods. We used the 1D radiation hydrodynamics code RADYN to perform simulations of the effect of a beam of electrons injected at the apex of a solar coronal loop. A grid of models was produced, varying the total energy input, the steepness, and low-energy cutoff of the beam energy spectrum.

Results. The full simulation results for a grid of models are made available online. Some general properties of the simulations are discussed.
Document ID
20240002665
Acquisition Source
Goddard Space Flight Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Mats Carlsson ORCID
(University of Oslo Oslo, Norway)
Lyndsay Fletcher ORCID
(University of Glasgow Glasgow, United Kingdom)
Joel Allred
(Goddard Space Flight Center Greenbelt, United States)
Petr Heinzel ORCID
(Czech Academy of Sciences Prague, Czechia)
Jana Kasparova ORCID
(Czech Academy of Sciences, Astronomical Institute Ondřejov, Czechia)
Adam Kowalski ORCID
(University of Colorado Boulder Boulder, United States)
Mihalis Mathioudakis ORCID
(Queen's University Belfast Belfast, United Kingdom)
Aaron Reid
(Queen's University Belfast Belfast, United Kingdom)
Paulo J. A. Simoes ORCID
(Universidade Presbiteriana Mackenzie São Paulo, Brazil)
Date Acquired
February 29, 2024
Publication Date
May 24, 2023
Publication Information
Publication: Astronomy & Astrophysics
Publisher: EDP Sciences
Volume: 673
Issue Publication Date: May 1, 2024
ISSN: 0004-6361
e-ISSN: 1432-0746
Subject Category
Solar Physics
Funding Number(s)
WBS: 791926.02.09.02.79
CONTRACT_GRANT: RRC 606862 (F-CHROMA)
CONTRACT_GRANT: ERC 291058 (CHROMPHYS)
PROJECT: RCN 262622
CONTRACT_GRANT: ST/P000533/1
CONTRACT_GRANT: ST/T000422/1
CONTRACT_GRANT: GACR 19-09489S
PROJECT: RVO 67985815
CONTRACT_GRANT: CNPq 307612/2019-8
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
External Peer Committee
Keywords
hydrodynamics
Sun: atmosphere
Sun: chromosphere
Sun: flares
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