Title :
A nonorthogonally-oriented higher-order FDTD technique for 3-D waveguide and antenna structures on curvilinear grids
Author :
Kantartzis, N.V. ; Prokopidis, K.P. ; Tsiboukis, T.D. ; Kriezis, E.E.
Author_Institution :
Dept. of Electr. & Comput. Eng., Aristotelian Univ. of Thessaloniki, Greece
Abstract :
A generalized higher-order FDTD technique for the accurate modeling of complex waveguide and antenna configurations in 3-D nonorthogonal curvilinear coordinates, is presented in this paper. The novel methodology which introduces conventional and nonstandard differencing concepts, embodies an efficient treatment of the div-curl problem on an unstructured lattice and develops enhanced perfectly matched layer absorbers for the truncation of unbounded domains. Moreover, a progressively mesh expanding algorithm leads to a serious decrease of the overall mesh. In the temporal variable, the four-stage Runge-Kutta integrator is also invoked, whereas the wider spatial increments are effectively limited by a new class of self-adaptive compact operators. Numerical verification illustrates that the proposed technique offers a significant mitigation of dispersion errors, yields precise values for the S-parameters and performs promising radiation pattern computations for various kinds of contemporary antennas.
Keywords :
Runge-Kutta methods; S-parameters; antenna radiation patterns; electromagnetic wave absorption; finite difference time-domain analysis; microwave antennas; waveguide theory; waveguides; 3D nonorthogonal curvilinear coordinates; 3D waveguide; S-parameters; antenna configurations; antenna structures; conventional differencing concepts; curvilinear grids; dispersion errors; div-curl problem; four-stage Runge-Kutta integrator; generalized higher-order FDTD; microwave applications; nonorthogonally-oriented higher-order FDTD; nonstandard differencing concepts; perfectly matched layer absorbers; progressively mesh expanding algorithm; radiation pattern computation; self-adaptive compact operators; spatial increments; temporal variable; unbounded domains truncation; unstructured lattice; Antenna accessories; Antenna radiation patterns; Application software; Electromagnetic waveguides; Finite difference methods; Lattices; Perfectly matched layers; Scattering parameters; Time domain analysis; Waveguide components;
Conference_Titel :
Antennas, Propagation and EM Theory, 2000. Proceedings. ISAPE 2000. 5th International Symposium on
Conference_Location :
Beijing, China
Print_ISBN :
0-7803-6377-9
DOI :
10.1109/ISAPE.2000.894725