Title :
Multifrequency formulation for electromagnetic scattering using shifted-frequency internal equivalence
Author_Institution :
Dept. of Electr. & Electron. Eng., Hacettepe Univ., Ankara, Turkey
fDate :
2/1/1999 12:00:00 AM
Abstract :
A new formulation for multifrequency electromagnetic scattering problems involving homogeneous or inhomogeneous bodies is introduced and discussed. The formulation is developed using the shifted-frequency internal equivalence in the construction of the internal equivalence in the scattering problem. With this approach, the equivalent currents for the internally equivalent problem radiate a chosen fixed frequency which is different from the frequency of the incident wave. These equivalent currents are functions of the incident and shifted frequencies, material parameters, and the total field inside the body and on its boundary. A combination of this internally equivalent problem with an externally equivalent one, so as to match the tangential fields at the boundary of the body, results in the new formulation. The formulation and its application to generate multifrequency data using internal data generated at a single frequency in a volume-surface integral-equation approach utilizing the method of moments in the solution are explained and exemplified using a simple inhomogeneous slab problem
Keywords :
boundary integral equations; electromagnetic wave scattering; frequency-domain analysis; inhomogeneous media; method of moments; electromagnetic scattering; equivalent currents; fixed frequency; frequency domain analysis; homogeneous bodies; inhomogeneous bodies; inhomogeneous slab problem; internally equivalent problem; method of moments; multifrequency formulation; shifted-frequency internal equivalence; tangential fields; volume-surface integral-equation approach; Boundary conditions; Dielectrics; Electromagnetic analysis; Electromagnetic scattering; Frequency domain analysis; Integral equations; Moment methods; Nonhomogeneous media; Nonuniform electric fields; Slabs;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on