DocumentCode
898676
Title
Modelling of Wave Propagation in Wire Media Using Spatially Dispersive Finite-Difference Time-Domain Method: Numerical Aspects
Author
Zhao, Yan ; Belov, Pavel A. ; Hao, Yang
Author_Institution
London Univ., London
Volume
55
Issue
6
fYear
2007
fDate
6/1/2007 12:00:00 AM
Firstpage
1506
Lastpage
1513
Abstract
The finite-difference time-domain (FDTD) method is applied for modelling of wire media as artificial dielectrics. Both frequency dispersion and spatial dispersion effects in wire media are taken into account using the auxiliary differential equation method. According to the authors´ knowledge, this is the first time when the spatial dispersion effect is considered in the FDTD modelling. The stability of developed spatially dispersive FDTD formulations is analyzed through the use of von Neumann method combined with the Routh-Hurwitz criterion. The results show that the conventional stability Courant limit is preserved using standard discretization scheme for wire media modelling. Flat sub-wavelength lenses formed by wire media are chosen for validation of proposed spatially dispersive FDTD formulation. Results of the simulations demonstrate excellent sub-wavelength imaging capability of the wire medium slabs. The size of the simulation domain is significantly reduced using the modified perfectly matched layer (MPML) which can be placed in close vicinity of the wire medium. It is demonstrated that the reflections from the MPML-wire medium interface are less than-70 dB, that lead to dramatic improvement of convergence compared to conventional simulations.
Keywords
conducting bodies; differential equations; finite difference time-domain analysis; metamaterials; wave propagation; FDTD; MPML; Routh-Hurwitz criterion; artificial dielectrics; auxiliary differential equation method; discretization scheme; frequency dispersion; metamaterials; modified perfectly matched layer; parallel ideally conducting thin wires; spatial dispersion effects; spatially dispersive finite-difference time-domain method; sub-wavelength lenses; von Neumann method; wave propagation modelling; wire media; Dielectrics; Differential equations; Dispersion; Finite difference methods; Frequency; Lenses; Stability analysis; Stability criteria; Time domain analysis; Wire; Artificial dielectrics and metamaterials; finite-difference time-domain (FDTD); spatial dispersion; wire medium;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/TAP.2007.897320
Filename
4231315
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