DocumentCode :
796742
Title :
An exact line integral representation of the physical optics scattered field: the case of a perfectly conducting polyhedral structure illuminated by electric Hertzian dipoles
Author :
Johansen, Peter M. ; Breinbjerg, Olav
Author_Institution :
Electromagn. Inst., Tech. Univ. Denmark, Lyngby, Denmark
Volume :
43
Issue :
7
fYear :
1995
fDate :
7/1/1995 12:00:00 AM
Firstpage :
689
Lastpage :
696
Abstract :
An exact line integral representation of the electric physical optics scattered field is presented. This representation applies to scattering configurations with perfectly electrically conducting polyhedral structures illuminated by a finite number of electric Hertzian dipoles. The positions of the source and observation points can be almost arbitrary. The line integral representation yields the exact same result as the conventional surface radiation integral; however, it is potentially less time consuming and particularly useful when the physical optics field can be augmented by a fringe wave contribution as calculated from physical theory of diffraction equivalent edge currents. The final expression for the line integral representation is lengthy but involves only simple functions and is thus suited for numerical calculation. To illustrate the exactness of the line integral representation, comparisons of numerical results obtained from the surface and the line integral representations are performed
Keywords :
conductors (electric); dipole antennas; electromagnetic field theory; electromagnetic wave scattering; integral equations; physical optics; physical theory of diffraction; electric Hertzian dipoles; equivalent edge currents; exact line integral representation; fringe wave contribution; numerical results; observation points; perfectly conducting polyhedral structure; physical optics scattered field; physical theory of diffraction; scattering configurations; source points; surface radiation integral; Computer aided software engineering; Electromagnetic radiation; Electromagnetic scattering; Optical scattering; Optical surface waves; Physical optics; Physical theory of diffraction; Radar antennas; Radar scattering; Surface waves;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/8.391140
Filename :
391140
Link To Document :
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