DocumentCode :
1218086
Title :
Use of modified Gaussian beams to optimize shaped reflectors
Author :
Schott, P. ; Pascal, O. ; Lemaître, F.
Author_Institution :
Office Nat. d´´Etudes et de Recherche en Aeronautique, Univ. Paul Sabatier, Toulouse, France
Volume :
2
Issue :
1
fYear :
2003
fDate :
6/25/1905 12:00:00 AM
Firstpage :
14
Lastpage :
17
Abstract :
An efficient electromagnetic method for the optimization of shaped reflectors is presented. The repeated computation of scattering from a reflector surface at each iteration, using the conventional numerical techniques of either physical optics (PO) or aperture integration (AI), usually makes the iterative procedures very inefficient for the synthesis of large reflectors. An asymptotic Gaussian beam (GB) technique has been developed and applied successfully to the fast analysis of reflector antennas of various shapes (Cabbage, H.-T. et al., Proc. IEEE Ant. and Propag. Society URSI Symp., vol. 4, p.2336-9, 1999). This GB technique completely avoids numerical integration and thus makes the analysis very efficient. Our method uses the GB technique, coupled with a local description of the primary source and the reflector. The primary source radiation is expanded using a modified Gaussian beams basis. An antenna pattern calculation is demonstrated on a reflector that is described by local parameters in a novel way. By virtue of these local properties and the use of a steep step descent algorithm, a basic display of antenna pattern optimization is presented to illustrate the effectiveness of our method.
Keywords :
antenna radiation patterns; directive antennas; iterative methods; optimisation; reflector antennas; satellite antennas; shaped beam antennas; antenna pattern optimization; aperture integration; asymptotic Gaussian beam technique; contoured beam; iterative procedures; modified Gaussian beams; physical optics; primary source; satellite antennas; scattering; shaped reflector antennas; steep step descent algorithm; Apertures; Artificial intelligence; Electromagnetic scattering; Optical computing; Optical scattering; Optimization methods; Physical optics; Physics computing; Reflector antennas; Shape;
fLanguage :
English
Journal_Title :
Antennas and Wireless Propagation Letters, IEEE
Publisher :
ieee
ISSN :
1536-1225
Type :
jour
DOI :
10.1109/LAWP.2003.810771
Filename :
1203842
Link To Document :
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