Title :
RCS analysis and reduction for lossy dihedral corner reflectors
Author :
Griesser, Timothy ; Balanis, Constantine A. ; Liu, Kefeng
Author_Institution :
Dept. of Electr. & Comput. Eng., Arizona State Univ., Tempe, AZ, USA
fDate :
5/1/1989 12:00:00 AM
Abstract :
The radar cross-section patterns of lossy dihedral corner reflectors are calculated using a uniform geometrical theory of diffraction for impedance surfaces. All terms of up to third order reflections and diffractions are considered for patterns in the principal plane. The surface waves are included whenever they exist for reactive surface impedances. The dihedral corner reflectors examined have right, obtuse, and acute interior angles, and patterns over the entire 360° azimuthal plane are calculated. The surface impedances can be different on the four faces of the dihedral corner reflector; however, the surface impedance must be uniform over each face. Computed cross sections are compared with a moment method technique for a dielectric/ferrite absorber coating on a metallic corner reflector. The analysis of the dihedral corner reflector is important because it demonstrates many of the important scattering contributors of complex targets including both interior and exterior wedge diffraction, half-plane diffraction, and dominant multiple reflections and diffractions
Keywords :
electromagnetic wave diffraction; electromagnetic wave reflection; electromagnetic wave scattering; radar cross-sections; RCS analysis; UTD; acute interior angles; complex targets; dielectric/ferrite absorber coating; dihedral corner reflectors; dominant multiple reflections; exterior wedge diffraction; geometrical theory of diffraction; half-plane diffraction; impedance surfaces; lossy reflectors; metallic corner reflector; obtuse interior angles; radar cross-section patterns; right interior angles; surface waves; third order diffractions; third order reflections; Azimuthal plane; Coatings; Dielectrics; Ferrites; Moment methods; Physical theory of diffraction; Radar cross section; Reflection; Surface impedance; Surface waves;
Journal_Title :
Proceedings of the IEEE