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Toward the development of a three-dimensional unconditionally stable finite-difference time-domain method

IEEE Transactions on Microwave Theory and Techniques · 2000 · Vol. 48(9) · pp. 1550–1558
Fenghua ZhenZhizhang ChenJiazong Zhang

Abstract

In this paper, an unconditionally stable three-dimensional (3-D) finite-difference time-method (FDTD) is presented where the time step used is no longer restricted by stability but by accuracy. The principle of the alternating direction implicit (ADI) technique that has been used in formulating an unconditionally stable two-dimensional FDTD is applied. Unlike the conventional ADI algorithms, however, the alternation is performed in respect to mixed coordinates rather than to each respective coordinate direction, Consequently, only two alternations in solution marching are required in the 3-D formulations. Theoretical proof of the unconditional stability is shown and numerical results are presented to demonstrate the effectiveness and efficiency of the method. It is found that the number of iterations with the proposed FDTD can be at least four times less than that with the conventional FDTD at the same level of accuracy.

Electromagnetic Simulation and Numerical MethodsElectromagnetic Scattering and AnalysisGyrotron and Vacuum Electronics ResearchFinite-difference time-domain methodStability (learning theory)MathematicsAlternating direction implicit methodFinite difference methodApplied mathematicsFinite differenceNumerical stabilityMathematical analysisAlgorithm
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References
Numerical Solution of Partial Differential Equations.
American Mathematical Monthly · 1966 · 1,516 citations
Numerical solution of initial boundary value problems involving maxwell's equations in isotropic media
IEEE Transactions on Antennas and Propagation · 1966 · 14,551 citations
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