HR: 0800h
AN: SA21A-0265 [Abstracts]
TI: Initial Observations of Storm-Time and Disturbance Electric Fields in the Subauroral and Mid-Latitude
Ionospheres Using the SuperDARN-Storm Radar at Wallops Island, VA
AU: * Greenwald, R A
EM: ray.greenwald@jhuapl.edu
AF: Johns Hopkins University Applied Physics Laboratory, 11100 Johns Hopkins Road, Laurel, MD 20723
United States
AU: Oksavik, K
EM: kjellmar.oksavik@jhuapl.edu
AF: Johns Hopkins University Applied Physics Laboratory, 11100 Johns Hopkins Road, Laurel, MD 20723
United States
AU: Ruohoniemi, J M
EM: mike.ruohoniemi@jhuapl.edu
AF: Johns Hopkins University Applied Physics Laboratory, 11100 Johns Hopkins Road, Laurel, MD 20723
United States
AU: Baker, J B
EM: joseph.baker@jhuapl.edu
AF: Johns Hopkins University Applied Physics Laboratory, 11100 Johns Hopkins Road, Laurel, MD 20723
United States
AU: Gjerloev, J W
EM: Jesper.Gjerloev@jhuapl.edu
AF: Johns Hopkins University Applied Physics Laboratory, 11100 Johns Hopkins Road, Laurel, MD 20723
United States
AU: Kavoussi, N
EM: nicholas.kavoussi@jhuapl.edu
AF: Johns Hopkins University Applied Physics Laboratory, 11100 Johns Hopkins Road, Laurel, MD 20723
United States
AB:
In May of 2005, the Johns Hopkins University Applied Physics Laboratory in collaboration with the Goddard Space Flight Center
Wallops Flight Facility began operation of a new SuperDARN radar located near the Wallops Island sounding rocket launch
site. The radar is the first of the SuperDARN network that has been sited at a mid-latitude location from which it can
detect electron density irregularities produced by ionospheric electric fields and density gradients during disturbed
geomagnetic conditions with particular emphasis on geomagnetic storms. The radar scans over a 52 degree azimuth sector that
extends over much of the North Atlantic Ocean and has spatial and temporal resolutions of ~50 km and 1-2 minutes. Doppler
information from the backscattered signals is used to determine the spatial structure and temporal variability of electric
fields and plasma convection in the low-latitude portion of the auroral, subauroral and mid-latitude ionospheres. Since the
radar began operations, there have been significant geomagnetic storms on May 15th, June 12th, June 23rd, August 24th, and
August 31st of the present year. There have also been a number of other days that have displayed strong non-storm
disturbances. Using these events we have been able to identify storm-enhanced convection electric fields at all local times
and a broad range of latitudes extending from 50-70 degrees geomagnetic. In this paper, we present examples of penetrating
electric fields at a number of local times as well as midnight sector subauroral flow enhancements that are very similar to
the SAID events observed with low-altitude spacecraft. One of the unique aspects of the later phenomena is that the Wallops
radar allows us to observe the growth and decay of SAID-type flows.
DE: 2411 Electric fields (2712)
DE: 2441 Ionospheric storms (7949)
DE: 2443 Midlatitude ionosphere
DE: 2463 Plasma convection (2760)
DE: 6929 Ionospheric physics (1240, 2400)
SC: SPA-Aeronomy [SA]
MN: Fall Meeting 2005