Title :
Scattering by an infinite wedge with tensor impedance boundary conditions-a moment method/physical optics solution for the currents
Author_Institution :
US Naval Res. Lab., Washington, DC, USA
fDate :
6/1/1991 12:00:00 AM
Abstract :
Plane wave scattering by an infinite, two-dimensional wedge whose faces are characterized by impedance tensors is discussed. A combination of the moment method (MM) and physical optics (PO) is used to obtain a solution for the equivalent electric currents. The currents near the edge on each face are expanded with a set of basis functions consisting of pulse functions, defined on a meshed region, plus a function spanning the whole face. The currents outside the meshed region are taken to be the sum of physical optics currents, taken to be known, plus the whole-face basis function current. Expressing the equivalent magnetic currents in terms of the electric currents through the impedance tensors, the expansion coefficients for the electric current expansion are determined through an MM solution of the magnetic field integral equation. Sample results for wedges with isotropic and anisotropic face impedances are presented
Keywords :
electric current; electric impedance; electromagnetic wave scattering; integral equations; numerical methods; physical optics; tensors; 2D wedge; anisotropic face impedances; basis functions; equivalent electric currents; equivalent magnetic currents; impedance boundary conditions; impedance tensors; infinite wedge; integral equations; isotropic face impedances; magnetic field integral equation; meshed region; moment method; numerical methods electromagnetic scattering; physical optics; plane wave scattering; pulse functions; two-dimensional wedge; whole-face basis function; Current; Impedance; Magnetic anisotropy; Magnetic fields; Moment methods; Optical pulses; Optical scattering; Perpendicular magnetic anisotropy; Physical optics; Tensile stress;
Journal_Title :
Antennas and Propagation, IEEE Transactions on