Title :
Improvements to the finite-difference time-domain method for calculating the radar cross section of a perfectly conducting target
Author :
Furse, Cynthia M. ; Mathur, Satnam P. ; Gandhi, Om P.
Author_Institution :
Dept. of Electr. Eng., Utah Univ., Salt Lake City, UT, USA
fDate :
7/1/1990 12:00:00 AM
Abstract :
Several improvements to the finite-difference time-domain (FDTD) method for calculating the radar cross section (RCS) of a perfectly conducting target are presented. Sinusoidal and pulsed FDTD excitations are compared to determine an efficient method of finding the frequency response of targets. The maximum cell size, the minimum number of external cells, and a method to eliminate field storage in the shielded internal volume of perfect conductors to reduce the computer storage requirements of FDTD are discussed. The magnetic-field DC offset induced by surface currents on perfectly conducting objects is observed, and its effects are removed by postprocessing to achieve convergence of the RCS calculations. RCS calculations using the FDTD method in two dimensions are presented for both square and circular infinite cylinders illuminated by both transverse electric and transverse magnetic polarized plane waves. The RCS of a metal cube in three dimensions is also presented. Good agreement between FDTD calculations and theoretical values was achieved for all cases, and parameters necessary to achieve this agreement are examined
Keywords :
difference equations; radar cross-sections; time-domain analysis; RCS calculations; external cells; finite-difference time-domain method; frequency response; infinite cylinders; magnetic-field DC offset; maximum cell size; metal cube; perfectly conducting target; polarized plane waves; pulsed FDTD excitations; radar cross section; shielded internal volume; transverse electric; transverse magnetic; Cities and towns; Conductors; EMP radiation effects; Engine cylinders; Finite difference methods; Frequency response; Polarization; Radar cross section; Tellurium; Time domain analysis;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on