DocumentCode :
952280
Title :
Modified piecewise linear current density recursive convolution finite-difference timedomain method for anisotropic magnetised plasmas
Author :
Liu, Siyuan ; Liu, Minggang ; Hong, Wei
Volume :
2
Issue :
7
fYear :
2008
fDate :
10/1/2008 12:00:00 AM
Firstpage :
677
Lastpage :
685
Abstract :
A modified piecewise linear current density recursive convolution (PLCDRC) finite-difference time-domain (FDTD) for anisotropic magnetised plasma is proposed. The method is derived using two recursive conclusion. The electric field is time-shifted in the first convolution and the current density is time-shifted in the second convolution. The computation of the current density and the electric field employ the piecewise linear approximation technique. Like PLCDRC FDTD, the method has more accuracy over CDRC FDTD. Moreover, it is faster in computation velocity than PLCDRC FDTD. The high efficiency and accuracy of the method are confirmed by computing the reflection and transmission through a magnetised plasma layer, with the direction of propagation parallel to the direction of the biasing field. The bistatic radar cross-section of conducting sphere covered with magnetised plasma is also calculated. Then, the numerical dispersion relation of the new PLCDRC FDTD scheme is derived. The numerical dispersion error and dissipation error caused by the new PLCDRC-FDTD method are investigated by comparing the real and imaginary parts of the numerical wave number with those of the analytical wave number. Finally, the stability of the new PLCDRC-FDTD method is discussed. This method can also be used in other frequency dispersion electromagnetic problem if it is modified slightly.
Keywords :
anisotropic media; antenna theory; current density; electromagnetic wave propagation; finite difference time-domain analysis; piecewise linear techniques; plasma waves; radar cross-sections; FDTD; anisotropic magnetised plasmas; finite-difference time-domain method; frequency dispersion electromagnetic problem; numerical dispersion; numerical wave number; piecewise linear approximation technique; piecewise linear current density recursive convolution;
fLanguage :
English
Journal_Title :
Microwaves, Antennas & Propagation, IET
Publisher :
iet
ISSN :
1751-8725
Type :
jour
DOI :
10.1049/iet-map:20070291
Filename :
4649007
Link To Document :
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