DocumentCode :
1339549
Title :
A truncated Floquet wave diffraction method for the full wave analysis of large phased arrays. I. Basic principles and 2-D cases
Author :
Neto, Andrea ; Maci, Stefano ; Vecchi, Giuseppe ; Sabbadini, Marco
Author_Institution :
Coll. of Comput., Siena Univ., Italy
Volume :
48
Issue :
4
fYear :
2000
fDate :
4/1/2000 12:00:00 AM
Firstpage :
594
Lastpage :
600
Abstract :
This two-part sequence deals with the formulation of an efficient method for the full wave analysis of large phased array antennas. This is based on the method of moments (MoM) solution of a fringe integral equation (IE) in which the unknown function is the difference between the exact solution of the finite array and that of the associated infinite array. The unknown currents can be interpreted as produced by the field diffracted at the array edge, which is excited by the Floquet waves (FWs) pertinent to the infinite configuration. Following this physical interpretation, the unknown in the IE is efficiently represented by a very small number of basis functions with domain on the entire array aperture. In order to illustrate the basic concepts, the first part of this sequence deals with the two-dimensional example of a linearly phased slit array. It is shown that the dominant phenomenon fur describing the current perturbation with respect to the infinite array is accurately represented in most cases by only three diffracted-ray-shaped unknown functions. This also permits a simple interpretation of the element-by-element current oscillation, which was described by other authors
Keywords :
antenna phased arrays; electromagnetic fields; electromagnetic wave diffraction; integral equations; linear antenna arrays; method of moments; 2D linearly phased slit array; MoM solution; array aperture; array edge; basis functions; current oscillation; current perturbation; diffracted field; diffracted-ray-shaped unknown functions; exact solution; finite array; fringe integral equation; full wave analysis; infinite array; infinite configuration; large phased array antennas; method of moments; truncated Floquet wave diffraction method; Antenna arrays; Apertures; Current distribution; Electromagnetic diffraction; Electromagnetic modeling; Helium; Integral equations; Moment methods; Periodic structures; Phased arrays;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/8.843674
Filename :
843674
Link To Document :
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