The increase in the curvature radius of geomagnetic field lines preceding a classical dipolarization
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Published:2020-04-07
Issue:2
Volume:38
Page:467-479
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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.
Abstract
Abstract. Based on assumptions that substorm field line dipolarization at
geosynchronous altitudes is associated with the arrival of high-velocity
magnetotail flow bursts referred to as bursty bulk flows, the
following sequence of field line dipolarization is proposed: (1) slow magnetoacoustic
wave excited through ballooning instability by enhanced inflows in pre-onset
intervals towards the equatorial plane; (2) in the equatorial plane, slow
magnetoacoustic wave stretching of the flux tube in dawn–dusk directions
resulting in spreading plasmas in dawn–dusk directions and reduction in the
radial pressure gradient in the flux tube. As a consequence of these
processes, the flux tube assumes a new equilibrium geometry in which
the curvature radius of new field lines increased in the meridian plane,
suggesting an onset of field line dipolarization. The dipolarization
processes associated with changing the curvature radius preceded classical
dipolarization caused by a reduction of cross-tail currents and pileup of the
magnetic fields. Increasing the curvature radius induced a convection surge in the equatorial plane
as well as inductive westward electric fields of the order of millivolts per meter (mV m−1). Electric
fields transmitted to the ionosphere produce an electromotive force in the E
layer for generating a field-aligned current system of Bostrom type. This is
also equivalent to the creation of an incomplete Cowling channel in the
ionospheric E layer by the convection surge.
Publisher
Copernicus GmbH
Subject
Space and Planetary Science,Earth and Planetary Sciences (miscellaneous),Atmospheric Science,Geology,Astronomy and Astrophysics
Reference46 articles.
1. Akasofu, S.-I.: Source of auroral electrons and the magnetospheric substorm
current system, J. Geophys. Res., 108, 8006, https://doi.org/10.1029/2002JA009547,
2003. 2. Allan, W., Menk, F. W., Fraser, B. J., Li, Y., and White, S. P.: Are low-latitude
Pi2 pulsations cavity/waveguide mode?, Geophys. Res. Lett., 23, 765–768, 1996. 3. Baumjohann, W.: Ionospheric and field-aligned current systems in the auroral
zone: A concise review, Adv. Space Res., 2, 55–62, 1983. 4. Baumjohann, W., Hesse, M., Kokubun, S., Mukai, T., Nagai, T., and
Petrukovich, A. A.: Substorm dipolarization and recovery, J. Geophys. Res.,
104, 24995–25000, 1999. 5. Birn, J. and Hesse, M.: Details of current disruption and diversion in
simulations of magnetotail dynamics, J. Geophys. Res., 101, 15345–15358,
1996.
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