HR: 1340h
AN: SA13A-1067 [Abstracts]
TI: Horizontal Electron Density Gradients and Wave Propagation at Mid-latitudes
AU: * Chua, D H
EM: damien.chua@nrl.navy.mil
AF: Naval Research Laboratory, Space Science Division, 4555 Overlook Ave SW, Washington,
DC 20375, United States
AU: Budzien, S A
EM: sbudzien@ssd5.nrl.navy.mil
AF: Naval Research Laboratory, Space Science Division, 4555 Overlook Ave SW, Washington,
DC 20375, United States
AU: Dymond, K F
EM: kdymond@ssd5.nrl.navy.mil
AF: Naval Research Laboratory, Space Science Division, 4555 Overlook Ave SW, Washington,
DC 20375, United States
AU: Coker, C
EM: clayton.coker@nrl.navy.mil
AF: Naval Research Laboratory, Space Science Division, 4555 Overlook Ave SW, Washington,
DC 20375, United States
AU: Liu, J Y
EM: jyliu@jupiter.ss.ncu.edu.tw
AF: National Central University, Institute of Space Science, No.300, Jhongda Rd., Jhongli City,
32001, Taiwan
AB:
We investigate the spatial variability in the large-scale electron density gradients associated with the Appleton
anomalies in the low-latitude, nightside ionosphere using a suite of instruments from the Constellation
Observing System for Meteorology Ionosphere and Climate (COSMIC) spacecraft. We use measurements from
the Tiny Ionospheric Photometer (TIP) instruments to infer the horizontal electron density gradients along each
satellite track. We demonstrate that the OI 135.6 nm emission intensities measured by the TIP instruments track
the horizontal electron density structure well with high spatial resolution and unprecedented sensitivity. Accurate
measurements of the horizontal electron density gradients are important for improving retrieved electron density
profiles from GPS occultation and other tomographic remote sensing techniques. The processes underlying the
variability in the large-scale, nightside electron density gradients are the main drivers of ionospheric weather. TIP
observations reveal significant variability in both the small and large scale structure of the nightside ionosphere.
The relative intensities, relative widths, and latitudinal separation of the northern and southern ionization crests of
the Appleton anomalies show a high degree of longitudinal variation. We demonstrate how the TIP
measurements can be used to understand how the propagation of VLF whistler-mode waves is affected by
gradients in electron density associated with equatorial ionospheric structure such as depletions and the
Appleton anomalies.
DE: 2415 Equatorial ionosphere
DE: 2431 Ionosphere/magnetosphere interactions (2736)
DE: 2437 Ionospheric dynamics
DE: 2439 Ionospheric irregularities
DE: 2494 Instruments and techniques
SC: SPA-Aeronomy [SA]
MN: 2007 Fall Meeting