Title :
Electromagnetic scattering from an inhomogeneous object by ray tracing
Author :
Kim, Hyeongdong ; Ling, Hao
Author_Institution :
Dept. of Electr. & Comput. Eng., Texas Univ., Austin, TX, USA
fDate :
5/1/1992 12:00:00 AM
Abstract :
A shooting and bouncing ray (SBR) formulation is presented for treating the electromagnetic scattering from electrically large, inhomogeneous objects. A dense grid of rays representing the incident plane wave is shot toward the inhomogeneous objects. At the scatterer boundary, reflected rays and refracted rays are generated due to the discontinuity of the medium parameters. The trajectory, amplitude, phase and polarization of the rays inside the inhomogeneous object are traced based on geometrical optics. Whenever the rays cross the scatterer surface, additional reflected/refracted rays are generated and are tracked. This is repeated until the intensities of the refracted/reflected rays become negligible. The contributions of the existing rays to the total scattered field are calculated using the equivalence principle in conjunction with a ray-tube integration scheme. The ray formulation is applied to calculate the backscattering from cylinders and spheres and good agreement with the exact series solutions is observed in the high-frequency range. In addition, the backscattering mechanisms in penetrable objects are interpreted in terms of simple ray pictures
Keywords :
electromagnetic wave reflection; electromagnetic wave refraction; electromagnetic wave scattering; EM scattering; amplitude; backscattering; cylinders; discontinuity; electrically large objects; electromagnetic scattering; equivalence principle; exact series solutions; geometrical optics; high-frequency range; incident plane wave; inhomogeneous object; medium parameters; phase; polarization; ray formulation; ray tracing; ray-tube integration; reflected rays; refracted rays; scattered field; scatterer boundary; shooting and bouncing ray; spheres; trajectory; Backscatter; Electromagnetic refraction; Electromagnetic scattering; Electromagnetic wave polarization; Geometrical optics; Nonuniform electric fields; Optical polarization; Optical refraction; Optical scattering; Scattering parameters;
Journal_Title :
Antennas and Propagation, IEEE Transactions on