Title :
A higher order nonstandard FDTD-PML method for the advanced modeling of complex EMC problems in generalized 3-D curvilinear coordinates
Author :
Kantartzis, Nikolaos V. ; Tsiboukis, Theodoros D.
Author_Institution :
Dept. of Electr. & Comput. Eng., Aristotle Univ. of Thessaloniki, Greece
Abstract :
A higher order finite-difference time-domain perfectly matched layer (PML) methodology for the systematic modeling of generalized three-dimensional electromagnetic compatibility (EMC) problems, is presented in this paper. Establishing a covariant/contravariant formulation, the novel algorithm introduces a parametric topology of accurate nonstandard schemes for the nonorthogonal div-curl problem and the suppression of lattice dispersion. Also, the wider boundary stencils are treated by compact operators, while a mesh expanding process reduces the absorber´s depth. At arbitrarily-aligned interfaces, consistency is preserved through a convergent concept that considers the proper continuity conditions. Hence, the enhanced PMLs attain large annihilation rates for complex domains and broadband spectrums. Numerical validation-stressing on evanescent waves near scatterers-confirms the superiority of the proposed algorithm via realistic EMC applications, like shielding enclosures, printed circuit boards, and modern antennas.
Keywords :
covariance analysis; electromagnetic compatibility; finite difference time-domain analysis; mesh generation; absorber depth; annihilation rates; antennas; arbitrarily-aligned interfaces; boundary stencils; broadband spectrum; compact operators; complex domains; consistency; continuity conditions; contravariant formulation; covariant formulation; electromagnetic compatibility; electromagnetic numerical modeling; evanescent waves; finite-difference time-domain; generalized 3D curvilinear coordinates; higher order nonstandard topological schemes; lattice dispersion suppression; mesh expanding process; nonorthogonal div-curl problem; perfectly matched layer; printed circuit boards; shielding enclosures; Electromagnetic compatibility; Electromagnetic modeling; Electromagnetic scattering; Finite difference methods; Frequency; Lattices; Magnetic losses; Perfectly matched layers; Time domain analysis; Topology;
Journal_Title :
Electromagnetic Compatibility, IEEE Transactions on
DOI :
10.1109/TEMC.2004.823606