A possible source mechanism for magnetotail current sheet flapping
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Published:2018-07-27
Issue:4
Volume:36
Page:1027-1035
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ISSN:1432-0576
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Container-title:Annales Geophysicae
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language:en
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Short-container-title:Ann. Geophys.
Author:
Juusola LiisaORCID, Pfau-Kempf YannORCID, Ganse UrsORCID, Battarbee MarkusORCID, Brito ThiagoORCID, Grandin MaximeORCID, Turc LucileORCID, Palmroth MinnaORCID
Abstract
Abstract. The origin of the flapping motions of the current sheet in the Earth's
magnetotail is one of the most interesting questions of magnetospheric
dynamics yet to be solved. We have used a polar plane simulation from the
global hybrid-Vlasov model Vlasiator to study the characteristics and source
of current sheet flapping in the center of the magnetotail. The
characteristics of the simulated signatures agree with observations reported
in the literature. The flapping is initiated by a hemispherically asymmetric
magnetopause perturbation, created by subsolar magnetopause reconnection,
that is capable of displacing the tail current sheet from its nominal
position. The current sheet displacement propagates downtail at the same pace
as the driving magnetopause perturbation. The initial current sheet
displacement launches a standing magnetosonic wave within the tail resonance
cavity. The travel time of the wave within the local cavity determines the
period of the subsequent flapping signatures. Compression of the tail lobes
due to added flux affects the cross-sectional width of the resonance cavity
as well as the magnetosonic speed within the cavity. These in turn modify the
wave travel time and flapping period. The compression of the resonance cavity
may also provide additional energy to the standing wave, which may lead to
strengthening of the flapping signature. It may be possible that the
suggested mechanism could act as a source of kink-like waves that have been
observed to be emitted from the center of the tail and to propagate toward
the dawn and dusk flanks.
Funder
European Research Council Partnership for Advanced Computing in Europe AISBL Academy of Finland
Publisher
Copernicus GmbH
Subject
Space and Planetary Science,Earth and Planetary Sciences (miscellaneous),Atmospheric Science,Geology,Astronomy and Astrophysics
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