Title :
Scattering Cross Sections of Impedance-Matched Bodies
Author :
Osipov, Andrey V.
Author_Institution :
Microwaves & Radar Inst., German Aerosp. Center (DLR), Wessling, Germany
Abstract :
Electromagnetic scattering from bodies with the surface impedance equal to the wave impedance of the surrounding medium shows a number of extremal features, including vanishing axial backscattering cross section in the case of bodies of revolution. This paper examines various scattering cross sections (mono- and bistatic, total scattering, absorption, and extinction) of electrically large arbitrarily shaped impedance-matched bodies, and it is shown that the backscattering cross section of arbitrarily shaped convex impedance-matched bodies vanishes in the optical limit. Furthermore, it is conjectured that considered as functions of the surface impedance, the mean total scattering cross section has a global minimum and the mean absorption cross section a global maximum when the body is illuminated by plane waves with random incidence direction and polarization.
Keywords :
convex programming; electromagnetic wave absorption; electromagnetic wave scattering; impedance matching; radar cross-sections; bistatic scattering cross section; electrically large arbitrarily shaped convex impedance-matched bodies; electromagnetic scattering; extinction cross section; mean absorption cross section; mean total scattering cross section; monostatic scattering cross section; random incidence direction; random incidence polarization; surface impedance; surrounding medium; total scattering cross section; vanishing axial backscattering cross section; wave impedance; Electromagnetic scattering; Electromagnetics; Impedance; Optical surface waves; Surface impedance; Surface waves; Cylindrical scatterers; electromagnetic metamaterials; electromagnetic scattering by absorbing media; electromagnetic theory; impedance boundary conditions; impedance matching; microwave absorbers; polarization; radar cross sections; scattering matrices; spherical scatterers; surface impedance;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2015.2421945