DocumentCode
2261888
Title
Full-wave computation of clutter for VHF ground RADAR over irregular terrain
Author
Le Palud, M.
Author_Institution
CREC St-CYR/DGER, Guer, France
fYear
2001
fDate
2001
Firstpage
314
Lastpage
318
Abstract
The present paper proposes a method to compute the complex impulse response of wireless channels based on a parabolic equation (PE) propagation algorithm. The choice of a full-wave method, instead of an asymptotic algorithm (knife-edge, UTD/GTD), has been made considering that the last is inappropriate for terrestrial VHF/UHF paths. It is indeed well known that, in these bands, scatterers and diffracting obstacles are often close to each other and to the ground (in comparison with the wavelength). The propagation algorithm gives the complex signal (amplitude and phase) at the receiver in CW operation for several values of the frequency (ie, sampled values of the transfer function). The impulse response of the deterministic channel is then obtained after FFT computing. The main limitation of this method is the fact that horizontal scattering and diffraction as well as depolarization cannot be fully taken into account because of its 2D nature. This method seems well suited to transmission and RADAR applications (prediction and simulation). We show sample computations of ground clutter for a monostatic VHF RADAR in pulse mode over an irregular terrain. Moreover, it can be extended to stochastic channels. We also exhibit comparisons between computed results and experimental data obtained with a vector-type Cox sounder for terrestrial VHF links located in rural areas
Keywords
CW radar; VHF radio propagation; electromagnetic wave diffraction; electromagnetic wave scattering; parabolic equations; radar clutter; radar receivers; transient response; CW operation; complex impulse response; complex signal; diffraction; full-wave method; ground clutter; irregular terrain; monostatic VHF RADAR; parabolic equation; propagation algorithm; pulse mode; receiver; scatterers; terrestrial VHF/UHF paths; wireless channels; Acoustic scattering; Computational modeling; Diffraction; Equations; Frequency; Predictive models; Radar applications; Radar clutter; Radar scattering; Transfer functions;
fLanguage
English
Publisher
ieee
Conference_Titel
Radar, 2001 CIE International Conference on, Proceedings
Conference_Location
Beijing
Print_ISBN
0-7803-7000-7
Type
conf
DOI
10.1109/ICR.2001.984681
Filename
984681
Link To Document