DocumentCode
979798
Title
Simple relations derived fom a phased-array antenna made of an infinite current sheet
Author
Wheeler, Harold A.
Author_Institution
Wheeler Laboratories, Inc., Great Neck, NY, USA
Volume
13
Issue
4
fYear
1965
fDate
7/1/1965 12:00:00 AM
Firstpage
506
Lastpage
514
Abstract
The simplest concept of a phased array is an infinite planar current sheet backed by a reflecting boundary. The electric current sheet, or resistance sheet, is the limiting case of many small electric dipoles, closely spaced, and backed by an open-circuit boundary. If this array is viewed as a receiver, a plane wave incident on the array at some angle (
) meets a boundary resistance varying in proportion to
for angles in the
plane, and
for angles in the
plane. If the array is matched at broadside (
), the corresponding reflection coefficient has the magnitude
. While the electric current sheet is realizable, the open-circuit boundary is not. However, a magnetic current sheet can be simulated by a conductive sheet with holes utilized as magnetic dipoles, such a sheet providing the backing equivalent to a short-circuit boundary. The latter case is related to the former by electromagnetic inversion or duality. Therefore, an incident plane wave meets a boundary conductance varying in proportion to
for angles in the
plane, and
for angles in the
plane. The predicted behavior is verified qualitatively by tests of such a model with elements of a practice size. The derivation is based on the principle of dividing the space in front of the array into parallel tubes or waveguides, one for each element cell in the sheet or array. This is one of the principles published by the author in 1948. A related principle enables the simulation of an infinite array by imaging a few elements in the walls of a waveguide. This latter principle is utilized for making tests of the array.
) meets a boundary resistance varying in proportion to
for angles in the
plane, and
for angles in the
plane. If the array is matched at broadside (
), the corresponding reflection coefficient has the magnitude
. While the electric current sheet is realizable, the open-circuit boundary is not. However, a magnetic current sheet can be simulated by a conductive sheet with holes utilized as magnetic dipoles, such a sheet providing the backing equivalent to a short-circuit boundary. The latter case is related to the former by electromagnetic inversion or duality. Therefore, an incident plane wave meets a boundary conductance varying in proportion to
for angles in the
plane, and
for angles in the
plane. The predicted behavior is verified qualitatively by tests of such a model with elements of a practice size. The derivation is based on the principle of dividing the space in front of the array into parallel tubes or waveguides, one for each element cell in the sheet or array. This is one of the principles published by the author in 1948. A related principle enables the simulation of an infinite array by imaging a few elements in the walls of a waveguide. This latter principle is utilized for making tests of the array.Keywords
Phased arrays; Antenna arrays; Current; Dipole antennas; Electric resistance; Electromagnetic waveguides; Impedance; Optical reflection; Phased arrays; Predictive models; Testing;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/TAP.1965.1138456
Filename
1138456
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