Journal of Space Weather and Space Climate · 2014 · 25 citations · 74 references
GeophysicsEngineeringGround-based MagnetometersAtmospheric ScienceRealistic Ionosphere BoundaryWave PropagationRemote SensingOther FeaturesPlasma PhysicsIonosphereMagnetospheric PhysicsPlasmapause LocationSpace Plasma PhysicSolar-terrestrial InteractionPlanetary MagnetosphereSpace WeatherEarth ScienceMagnetospheric Plasma
The plasmapause is a highly dynamic boundary between different magnetospheric particle populations and convection regimes. Some of the most important space weather processes involve wave-particle interactions in this region, but wave properties may also be used to remote sense the plasmasphere and plasmapause, contributing to plasmasphere models. This paper discusses the use of existing ground magnetometer arrays for such remote sensing. Using case studies we illustrate measurement of plasmapause location, shape and movement during storms; refilling of flux tubes within and outside the plasmasphere; storm-time increase in heavy ion concentration near the plasmapause; and detection and mapping of density irregularities near the plasmapause, including drainage plumes, biteouts and bulges. We also use a 2D MHD model of wave propagation through the magnetosphere, incorporating a realistic ionosphere boundary and Alfvén speed profile, to simulate ground array observations of power and cross-phase spectra, hence confirming the signatures of plumes and other density structures.
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The terrestrial ring current: Origin, formation, and decay
Ioannis A. Daglis, R. M. Thorne, W. Baumjohann et al. · Reviews of Geophysics · 1999 · 691 citations · Full text
Engineering, Solar-terrestrial Interaction, Earth Science +18
Danny Summers, Binbin Ni, Nigel P. Meredith · Journal of Geophysical Research Atmospheres · 2007 · 565 citations · Full text