DocumentCode :
1448240
Title :
Numerical validations of a nonlinear PML scheme for absorption of nonlinear electromagnetic waves
Author :
Xu, Jian ; Ma, Jian-Guo ; Chen, Zhizhang
Author_Institution :
COM DEV Phase Atlantic Ltd., Moncton, NB, Canada
Volume :
46
Issue :
11
fYear :
1998
fDate :
11/1/1998 12:00:00 AM
Firstpage :
1752
Lastpage :
1758
Abstract :
There have been several algorithms which extend the finite-difference time-domain (FDTD) solution of Maxwell´s equations to nonlinear electromagnetic problems. Relative to other methods, FDTD achieves robustness by directly solving for the fundamental quantities, electric field E, and magnetic field A in space and time, rather than performing asymptotic analyses or assuming paraxial propagation and nonphysical envelope functions. As a result, the FDTD method is almost completely general and can account for any type of electromagnetic problems. As in linear cases, for a practical simulation, nonlinear FDTD modeling also requires the development of absorbing boundary conditions (ABCs) to effectively absorb the nonlinear electromagnetic waves for open nonlinear structures. In this paper, based on the Berenger´s perfectly matched layer (PML), a nonlinear PML (nPML) absorbing scheme is presented and then implemented in the transmission-line matrix (TLM)-based FDTD method. Numerical results are given to demonstrate the effectiveness of the nPML proposed
Keywords :
digital simulation; electromagnetic wave absorption; electronic engineering computing; finite difference time-domain analysis; nonlinear systems; solitons; 2D spatial soliton; Berenger´s perfectly matched layer; Maxwell´s equations; absorbing boundary conditions; electric field; envelope functions; finite-difference time-domain solution; magnetic field; nonlinear FDTD modeling; nonlinear PML; nonlinear electromagnetic waves; numerical validation; robustness; simulation; transmission-line matrix; Electromagnetic propagation; Electromagnetic propagation in absorbing media; Electromagnetic wave absorption; Finite difference methods; Magnetic analysis; Magnetic fields; Maxwell equations; Performance analysis; Robustness; Time domain analysis;
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/22.734575
Filename :
734575
Link To Document :
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