HR: 14:55h
AN: SM53A-06 [Abstracts]
TI: Model results of the effect of solar wind dynamic pressure enhancements on the auroral size and
strength and comparison with observations
AU: * Zesta, E
EM: ezesta@atmos.ucla.edu
AF: University of California Los Angeles,
Department of Atmospheric and Oceanic Sciences, 405 Hilgard Ave
Box 951565, Los Angeles, CA 90095-1565
United States
AU: Boudouridis, A
EM: thanasis@atmos.ucla.edu
AF: University of California Los Angeles,
Department of Atmospheric and Oceanic Sciences, 405 Hilgard Ave
Box 951565, Los Angeles, CA 90095-1565
United States
AU: Larson, D J
EM: Douglas.Larson@unh.edu
AF: University of New Hampshire,
Department of Physics and Space Science Center, 245G Morse Hall, 39 College Rd, Durham, NH 03824-3525
United States
AU: Raeder, J
EM: J.Raeder@unh.edu
AF: University of New Hampshire,
Department of Physics and Space Science Center, 245G Morse Hall, 39 College Rd, Durham, NH 03824-3525
United States
AU: Lummerzheim, D
EM: lumm@gi.alaska.edu
AF: University of Alaska,
Geophysical Institute, 903 Koyukuk Drive, Fairbanks, AK 99775-7320
United States
AU: Lyons, L
EM: larry@atmos.ucla.edu
AF: University of California Los Angeles,
Department of Atmospheric and Oceanic Sciences, 405 Hilgard Ave
Box 951565, Los Angeles, CA 90095-1565
United States
AB:
Recent studies have suggested that solar wind dynamic pressure enhancements can cause energetically very significant
perturbations in auroral precipitation and ionospheric currents, thus having the potential for significant energy input to
the Earth's upper atmosphere. It has been reported that pressure enhancements can cause significant and rapid closure of the
polar cap and open flux, widening and strengthening of the auroral oval at all local times, as well as an increase of the
cross polar cap potential and the efficiency of coupling of the solar wind to the magnetosphere. The effects are most
dramatic during periods of strongly southward IMF Bz but are evident at various degrees under most IMF conditions. We
investigate the physics driving such responses by comparing the observations with the results of the OpenGGCM MHD model, and
we identify to what extent the MHD model can reproduce the observed responses. We have isolated a small number of cases where
the solar wind dynamic pressure enhancement occurs under negative or near-zero IMF Bz. Perhaps the most peculiar of the
effects of pressure pulses is the rapid shrinkage of the polar cap as the increased solar wind dynamic pressure impacts the
magnetosphere, at the same time when the cross polar cap potential increases. We investigate, through the model, the time
development of the size of the open flux and of the auroral oval, and of the cross polar cap potential. Initial results from
one case study give some closing of the polar cap, but not with the observed time sequence with respect to field-aligned
current and cross-polar cap potential increases. In addition, it has been suggested that the closing of the polar cap is the
result of enhanced tail reconnection. We study this suggestion through the model by tracing the magnetospheric topology of
the separatrix and comparing dayside and nightside reconnection rates.
DE: 2704 Auroral phenomena (2407)
DE: 2736 Magnetosphere/ionosphere interactions (2431)
DE: 2776 Polar cap phenomena
DE: 2784 Solar wind/magnetosphere interactions
SC: SPA-Magnetospheric Physics [SM]
MN: Fall Meeting 2005