DocumentCode
88285
Title
Wuhan Ionospheric Oblique-Incidence Sounding System and Its New Application in Localization of Ionospheric Irregularities
Author
Shu-zhu Shi ; Gang Chen ; Guo-bin Yang ; Ting Li ; Zheng-yu Zhao ; Jing-nan Liu
Author_Institution
Global Navig. Satellite Syst. Res. Center, Wuhan Univ., Wuhan, China
Volume
53
Issue
4
fYear
2015
fDate
Apr-15
Firstpage
2185
Lastpage
2194
Abstract
In this paper, a novel oblique-incidence ionosonde (Wuhan Ionospheric Oblique-Incidence Sounding System) and its new application in the localization of the ionospheric irregularities are presented. Due to the usage of the binary-phase-coded waveform, a large signal processing gain, a high Doppler and range resolution, and a large unambiguous detection range can be achieved in this ionosonde. This ionosonde also adopts the peripheral component interconnect extensions for instruments (PXI) bus technology and is designed as a small-sized PXI-based system. Furthermore, a high-performance oven-controlled crystal oscillator that is disciplined by the Global Positioning System is used to achieve a good time and frequency synchronization. With multichannel digital receiver and multiple receiving sites, this ionosonde can be applied in the localization of the ionospheric irregularities. The details of the system configuration, the ambiguity function of the sounding waveforms, the signal processing algorithm, and the time and frequency synchronization method are described. The experimental results show that the virtual height along with the ground position of the ionospheric field-aligned irregularities can be preliminarily localized with this ionosonde.
Keywords
Global Positioning System; ionospheric disturbances; ionospheric electromagnetic wave propagation; ionospheric measuring apparatus; ionospheric techniques; Doppler resolution; PXI-based system; Wuhan ionospheric oblique-incidence sounding system; binary-phase-coded waveform; global positioning system; ionospheric field-aligned irregularities; ionospheric irregularities; oblique-incidence ionosonde; peripheral component interconnect extensions for instruments; range resolution; signal processing algorithm; signal processing gain; time-frequency synchronization method; virtual height; Doppler effect; Frequency synchronization; Global Positioning System; Ionosphere; Receivers; Signal processing; Time-frequency analysis; Binary-phase-coded waveform; ionospheric irregularities; multistation location; oblique-incidence ionosonde; time and frequency synchronization;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/TGRS.2014.2357443
Filename
6911975
Link To Document