Electrodynamical coupling of the geospace system during solar flares

Reduced daytime upward ExB drifts and weakened fountain effects in equatorial ionosphere have been frequently observed during the initial stage of solar flares. The cause of this phenomenon, however, remains unresolved. The latest state-of-art whole geospace model provides an unprecedented opportunity to explore the origin of this response. We show that both prompt penetration electric fields (PPEFs) and internal changes in the wind dynamo process are responsible for the reduced upward ion drifts. Solar-flare-induced PPEFs are caused by a reduced high-latitude potential as a result of flare-enhanced ionospheric conductances which are distinct from traditional PPEFs that respond to changes in solar wind conditions or magnetosphere dynamics. The neutral wind dynamo source is mainly a reduction in the background low-latitude eastward electric field. This reduction occurs to maintain current continuity in response to the flare enhancement of low-latitude Cowling conductance that is relatively greater than the enhancement of the dynamo current source.

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Author Liu, Jing
Qian, Liying
Maute, Astrid
Wang, Wenbin
Richmond, Arthur D.
Chen, Junjie
Lei, Jiuhou
Zhang, Qinghe
Xing, Zanyang
Publisher UCAR/NCAR - Library
Publication Date 2021-01-01T00:00:00
Digital Object Identifier (DOI) Not Assigned
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Topic Category geoscientificInformation
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Metadata Date 2023-08-18T18:14:38.931332
Metadata Record Identifier edu.ucar.opensky::articles:24206
Metadata Language eng; USA
Suggested Citation Liu, Jing, Qian, Liying, Maute, Astrid, Wang, Wenbin, Richmond, Arthur D., Chen, Junjie, Lei, Jiuhou, Zhang, Qinghe, Xing, Zanyang. (2021). Electrodynamical coupling of the geospace system during solar flares. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d7v98cfd. Accessed 29 June 2025.

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