DocumentCode
1037511
Title
RCS of a coated circular waveguide terminated by a perfect conductor
Author
Lee, Choon S. ; Lee, Shung-wu
Author_Institution
Hughes Aircraft Co., El Segundo, CA, USA
Volume
35
Issue
4
fYear
1987
fDate
4/1/1987 12:00:00 AM
Firstpage
391
Lastpage
398
Abstract
The radar cross section (RCS) of a circular waveguide terminated by a perfect electric conductor is calculated by the geometrical theory of diffraction (GTD) for the rim diffraction and by a physical optics approximation for the interior irradiation. The interior irradiation is generally more than 10 dB higher than the rim diffraction for
(
is the waveguide radius,
is the free-space wavelength). At low frequencies (
), the interior irradiation can be significantly reduced over a broad range of incident angle if the interior waveguide wall is coated with a thin layer (1 percent of the radius) of lossy magnetic material. Our theoretical prediction is confirmed by measurements. At higher frequencies (
), a thin layer of coating is effective for the case of near axial incidence, provided that a good transition of the
mode near the waveguide opening to the
mode inside the waveguide is made. A thicker layer of coating is required for the RCS reduction over wider incident angle.
(
is the waveguide radius,
is the free-space wavelength). At low frequencies (
), the interior irradiation can be significantly reduced over a broad range of incident angle if the interior waveguide wall is coated with a thin layer (1 percent of the radius) of lossy magnetic material. Our theoretical prediction is confirmed by measurements. At higher frequencies (
), a thin layer of coating is effective for the case of near axial incidence, provided that a good transition of the
mode near the waveguide opening to the
mode inside the waveguide is made. A thicker layer of coating is required for the RCS reduction over wider incident angle.Keywords
Circular waveguides; Geometrical diffraction theory; RCS (radar cross section); Radar cross sections; Coatings; Conductors; Frequency; Optical diffraction; Optical waveguide theory; Optical waveguides; Physical optics; Physical theory of diffraction; Radar cross section; Waveguide transitions;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/TAP.1987.1144114
Filename
1144114
Link To Document