Title :
Fast RCS computation over a frequency band using method of moments in conjunction with asymptotic waveform evaluation technique
Author :
Reddy, C.J. ; Deshpande, M.D. ; Cockrell, C.R. ; Beck, F.B.
Author_Institution :
Dept. of Electr. Eng., Hampton Univ., VA, USA
fDate :
8/1/1998 12:00:00 AM
Abstract :
The method of moments (MoM) in conjunction with the asymptotic waveform evaluation (AWE) technique is applied to obtain the radar cross section (RCS) of an arbitrarily shaped three-dimensional (3-D) perfect electric conductor (PEC) body over a frequency band. The electric field integral equation (EFIE) is solved using the MoM to obtain the equivalent surface current on the PEC body. In the AWE technique, the equivalent surface current is expanded in a Taylor´s series around a frequency in the desired frequency band. The Taylor series coefficients are then matched via the Pade approximation to a rational function. Using the rational function, the surface current is obtained at any frequency within the frequency range, which is in turn used to calculate the RCS of the 3-D PEC body. A rational function approximation is also obtained using the model-based parameter estimation (MBPE) method and compared with the Pade approximation. Numerical results for a square plate, a cube, and a sphere are presented over a frequency bandwidth. Good agreement between the AWE and the exact solution over the bandwidth is observed
Keywords :
approximation theory; electric fields; electromagnetic wave scattering; function approximation; integral equations; method of moments; radar cross-sections; series (mathematics); 3D perfect electric conductor; EFIE; MoM; PEC body; Pade approximation; Taylor series coefficients; asymptotic waveform evaluation; cube; electric field integral equation; equivalent surface current; fast RCS computation; frequency band; frequency bandwidth; method of moments; model-based parameter estimation; radar cross section; rational function approximation; sphere; square plate; surface current; Bandwidth; Conductors; Frequency domain analysis; Function approximation; Integral equations; Moment methods; Parameter estimation; Radar cross section; Taylor series; Wideband;
Journal_Title :
Antennas and Propagation, IEEE Transactions on