Title :
Geometric total electron content models for topside ionospheric sounding
Author :
Tancredi, Urbano ; Renga, Alfredo ; Grassi, Michele
Author_Institution :
Dept. of Eng., Univ. of Naples `Parthenope´, Naples, Italy
Abstract :
The ionosphere is commonly divided into the portion below (bottomside) and above (topside) the region at which peak values of electron density occur. Topside ionospheric modeling is a challenging problem because of the limited data available. Indeed, the more intense peak ionization region, or bottomside ionosphere, dominates the effects observable from ground stations. High-altitude ionosondes, such as sounding rockets, have been traditionally used for direct sounding only of the higher ionospheric layers. Nowadays, signals of opportunity exist for sounding the ionosphere with no dedicated ionosondes. With the continuous deployment of GPS receivers on board spacecraft for positioning, indirect sounding of the topside ionosphere using navigation signals can be performed. This paper reviews geometric-based models allowing to infer the total electron content of the topside ionosphere from spacecraft GPS measurements.
Keywords :
ionosphere; remote sensing; total electron content (atmosphere); GPS receivers; bottomside ionosphere; electron density peak values; geometric total electron content models; high-altitude ionosondes; intense peak ionization region; ionospheric layers; navigation signals; sounding rockets; spacecraft GPS measurements; topside ionospheric modeling; topside ionospheric sounding; total electron content; Approximation methods; Delays; Geometry; Global Positioning System; Ionosphere; Low earth orbit satellites; Receivers; GNSS; Ionosphere; Low Earth Orbit; Space Weather; Spacecraft; Total Electron Content;
Conference_Titel :
Environmental Energy and Structural Monitoring Systems (EESMS), 2014 IEEE Workshop on
Conference_Location :
Naples
Print_ISBN :
978-1-4799-4989-2
DOI :
10.1109/EESMS.2014.6923285