Title :
Three-Dimensional FDTD Simulation of Nonlinear Ferroelectric Materials in Rectangular Waveguide
Author :
Caudle, Byron T. ; Baginski, Michael E. ; Kirkici, Hulya ; Hamilton, Michael C.
Author_Institution :
Dept. of Electr. & Comput. Eng., Auburn Univ., Auburn, AL, USA
Abstract :
Nonlinear transmission lines have numerous applications in the communications and defense industries due to their ability to form and propagate short-duration ultrawideband pulses. This paper simulates a short-duration Gaussian transient exciting low-order TEm,0 modes in a nonlinear ferroelectric-filled conducting waveguide. A 3-D finite-difference time-domain simulation is employed in the analysis, and the ferroelectric-filled waveguide model is based on a nonlinear polarization relationship extrapolated from measurements. A small portion of the frequency band operates in the nonlinear polarization region. These components will propagate at higher velocity than lower amplitude components, and this effect counteracts dispersion and results in compression of the pulses into solitons as they propagate.
Keywords :
extrapolation; ferroelectric materials; finite difference time-domain analysis; polarisation; rectangular waveguides; 3D FDTD simulation; 3D finite difference time domain simulation; ferroelectric filled waveguide model; frequency band; nonlinear ferroelectric filled conducting waveguide; nonlinear ferroelectric materials; nonlinear polarization region; nonlinear polarization relationship; nonlinear transmission lines; rectangular waveguide; short duration Gaussian transient; short duration ultrawideband pulses; solitons; Computational modeling; Finite difference methods; Materials; Optical waveguides; Permittivity; Power transmission lines; Time domain analysis; Ferroelectric materials; finite-difference methods; nonlinear wave propagation;
Journal_Title :
Plasma Science, IEEE Transactions on
DOI :
10.1109/TPS.2013.2239663