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Solar wind control of auroral Alfvénic power generated in the magnetotail

Authors :
Binzheng Zhang
William Lotko
O. J. Brambles
Michael Wiltberger
Sheng Xi
John G. Lyon
Source :
Journal of Geophysical Research: Space Physics. 119:1734-1748
Publication Year :
2014
Publisher :
American Geophysical Union (AGU), 2014.

Abstract

The effects of solar wind driving conditions on the polar distribution of large-scale, nondispersive Alfvenic Poynting flux at low altitude during steady magnetosphere convections are studied using three-dimensional global simulations of the solar wind-magnetosphere-ionosphere interaction. Results from 18 test simulations driven by steady upstream solar wind (SW) and interplanetary magnetic field (IMF) conditions are used to investigate the relationship between SW/IMF driving and low-altitude signatures of large-scale Alfvenic Poynting flux. When the IMF is southward, the intensity of the Alfvenic Poynting flux increases, and the hemispheric integrated Alfvenic Poynting flux exhibits a linear relation with the SW electric field. When the IMF has a By component, the simulated hemispheric Alfvenic power does not fit to the same linear relation. During steady IMF By driving conditions, the low-altitude regions with enhanced Alfvenic Poynting flux are magnetically connected with magnetospheric dynamo regions on both open and closed field lines. The physical origin of low-altitude Alfvenic Poynting flux connecting to the closed field line region is similar with that during southward IMF Bz driving. However, the Alfvenic Poynting flux flowing from the open field line dynamo region may be related to the physical process on the magnetopause, and only shear-mode waves are generated.

Details

ISSN :
21699380
Volume :
119
Database :
OpenAIRE
Journal :
Journal of Geophysical Research: Space Physics
Accession number :
edsair.doi...........142cf977d814d0e8ebc3bc4d62b24d72
Full Text :
https://doi.org/10.1002/2013ja019178