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High-resolution spectroscopy of an erupting minifilament and its impact on the nearby chromosphere

  • We study the evolution of a minifilament eruption in a quiet region at the center of the solar disk and its impact on the ambient atmosphere. We used high spectral resolution imaging spectroscopy in H alpha acquired by the echelle spectrograph of the Vacuum Tower Telescope, Tenerife, Spain; photospheric magnetic field observations from the Helioseismic Magnetic Imager; and UV/EUV imaging from the Atmospheric Imaging Assembly of the Solar Dynamics Observatory. The H alpha line profiles were noise-stripped using principal component analysis and then inverted to produce physical and cloud model parameter maps. The minifilament formed between small-scale, opposite-polarity magnetic features through a series of small reconnection events, and it erupted within an hour after its appearance in H alpha. Its development and eruption exhibited similarities to large-scale erupting filaments, indicating the action of common mechanisms. Its eruption took place in two phases, namely, a slow rise and a fast expansion, and it produced a coronalWe study the evolution of a minifilament eruption in a quiet region at the center of the solar disk and its impact on the ambient atmosphere. We used high spectral resolution imaging spectroscopy in H alpha acquired by the echelle spectrograph of the Vacuum Tower Telescope, Tenerife, Spain; photospheric magnetic field observations from the Helioseismic Magnetic Imager; and UV/EUV imaging from the Atmospheric Imaging Assembly of the Solar Dynamics Observatory. The H alpha line profiles were noise-stripped using principal component analysis and then inverted to produce physical and cloud model parameter maps. The minifilament formed between small-scale, opposite-polarity magnetic features through a series of small reconnection events, and it erupted within an hour after its appearance in H alpha. Its development and eruption exhibited similarities to large-scale erupting filaments, indicating the action of common mechanisms. Its eruption took place in two phases, namely, a slow rise and a fast expansion, and it produced a coronal dimming, before the minifilament disappeared. During its eruption, we detected a complicated velocity pattern, indicative of a twisted, thread-like structure. Part of its material returned to the chromosphere, producing observable effects on nearby low-lying magnetic structures. Cloud model analysis showed that the minifilament was initially similar to other chromospheric fine structures, in terms of optical depth, source function, and Doppler width, but it resembled a large-scale filament on its course to eruption. High spectral resolution observations of the chromosphere can provide a wealth of information regarding the dynamics and properties of minifilaments and their interactions with the surrounding atmosphere.zeige mehrzeige weniger

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Metadaten
Verfasserangaben:Ioannis KontogiannisORCiD, Ekaterina Ivanova DinevaORCiDGND, Andrea DierckeORCiDGND, Meetu VermaORCiDGND, Christoph KuckeinORCiDGND, Horst BalthasarORCiD, Carsten DenkerORCiDGND
DOI:https://doi.org/10.3847/1538-4357/aba117
ISSN:0004-637X
ISSN:1538-4357
Titel des übergeordneten Werks (Englisch):The astrophysical journal : an international review of spectroscopy and astronomical physics
Verlag:Institute of Physics Publ.
Verlagsort:London
Publikationstyp:Wissenschaftlicher Artikel
Sprache:Englisch
Datum der Erstveröffentlichung:03.08.2020
Erscheinungsjahr:2020
Datum der Freischaltung:17.04.2023
Freies Schlagwort / Tag:active solar; active solar chromosphere; corona; high resolution spectroscopy; solar chromosphere; solar filament eruptions; the sun
Band:898
Ausgabe:2
Aufsatznummer:144
Seitenanzahl:12
Fördernde Institution:Deutsche Forschungsgemeinschaft (DFG) German Research Foundation (DFG); [DE.787/5-1]; German Academic Exchange Service (DAAD)Deutscher; Akademischer Austausch Dienst (DAAD); European CommissionEuropean; CommissionEuropean Commission Joint Research Centre [824064, 824135]; DFGGerman Research Foundation (DFG)European Commission [VE.1112/1-1]
Organisationseinheiten:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Physik und Astronomie
DDC-Klassifikation:5 Naturwissenschaften und Mathematik / 52 Astronomie / 520 Astronomie und zugeordnete Wissenschaften
Peer Review:Referiert
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