Title :
An Alternative Algorithm for Both Narrowband and Wideband Lorentzian Dispersive Materials Modeling in the Finite-Difference Time-Domain Method
Author_Institution :
Electron. Eng. Dept., Gebze Inst. of Technol., Kocaeli
fDate :
4/1/2007 12:00:00 AM
Abstract :
In this study, an alternative algorithm is proposed for modeling narrowband and wideband Lorentzian dispersive materials using the finite-difference time-domain (FDTD) method. Previous algorithms for modeling narrowband and wideband Lorentzian dispersive materials using the FDTD method have been based on a recursive convolution technique. They present two different and independent algorithms for the modeling of the narrowband and wideband Lorentzian dispersive materials, known as the narrowband and wideband Lorentzian recursive convolution algorithms, respectively. The proposed alternative algorithm may be used as a general algorithm for both narrowband and wideband Lorentzian dispersive materials modeling with the FDTD method. The second-order motion equation for the Lorentzian materials is employed as an auxilary differential equation. The proposed auxiliary differential-equation-based algorithm can also be applied to solve the borderline case dispersive electromagnetic problems in the FDTD method. In contrast, the narrowband and wideband Lorentzian recursive convolution algorithms cannot be used for the borderline case. A rectangular cavity, which is partially filled with narrowband and wideband Lorentzian dispersive materials, is presented as a numerical example. The time response of the electric field z component is used to validate and compare the results
Keywords :
cavity resonators; finite difference time-domain analysis; waveguide theory; FDTD method; Lorentzian dispersive materials modeling; auxilary differential equation; borderline case dispersive electromagnetic problems; differential-equation-based algorithm; finite-difference time-domain method; rectangular cavity; second-order motion equation; Convolution; Differential equations; Dispersion; Finite difference methods; Frequency; Maxwell equations; Narrowband; Polarization; Time domain analysis; Wideband; Cavity; Lorentzian dispersive material; finite difference time domain (FDTD);
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2007.892808