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High-frequency techniques for RCS prediction of plate geometriesThe principal-plane scattering from perfectly conducting and coated strips and rectangular plates is examined. Previous reports have detailed Geometrical Theory of Diffraction/Uniform Theory of Diffraction (GTD/UTD) solutions for these geometries. The GTD/UTD solution for the perfectly conducting plate yields monostatic radar cross section (RCS) results that are nearly identical to measurements and results obtained using the Moment Method (MM) and the Extended Physical Theory of Diffraction (EPTD). This was demonstrated in previous reports. The previous analysis is extended to bistatic cases. GTD/UTD results for the principal-plane scattering from a perfectly conducting, infinite strip are compared to MM and EPTD data. A comprehensive overview of the advantages and disadvantages of the GTD/UTD and of the EPTD and a detailed analysis of the results from both methods are provided. Several previous reports also presented preliminary discussions and results for a GTD/UTD model of the RCS of a coated, rectangular plate. Several approximations for accounting for the finite coating thickness, plane-wave incidence, and far-field observation were discussed. Here, these approximations are replaced by a revised wedge diffraction coefficient that implicitly accounts for a coating on a perfect conductor, plane-wave incidence, and far-field observation. This coefficient is computationally more efficient than the previous diffraction coefficient because the number of Maliuzhinets functions that must be calculated using numerical integration is reduced by a factor of 2. The derivation and the revised coefficient are presented in detail for the hard polarization case. Computations and experimental data are also included. The soft polarization case is currently under investigation.
Document ID
19920008793
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Balanis, Constantine A.
(Arizona State Univ. Tempe, AZ, United States)
Polka, Lesley A.
(Arizona State Univ. Tempe, AZ, United States)
Date Acquired
September 6, 2013
Publication Date
January 31, 1992
Subject Category
Communications And Radar
Report/Patent Number
NASA-CR-189884
NAS 1.26:189884
Report Number: NASA-CR-189884
Report Number: NAS 1.26:189884
Accession Number
92N18035
Funding Number(s)
CONTRACT_GRANT: NAG1-562
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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