Title :
Application of AIM and MBPE Techniques to Accelerate Modeling of 3-D Doubly Periodic Structures with Nonorthogonal Lattices Composed of Bianisotropic Media
Author :
Xiande Wang ; Werner, Douglas H. ; Turpin, Jeremiah P.
Author_Institution :
Dept. of Electr. Eng., Pennsylvania State Univ., University Park, PA, USA
Abstract :
An efficient methodology is introduced for rapid analysis and design of three-dimensional (3-D) doubly periodic structures over a wide frequency range based on hybrid finite element boundary integral (FEBI) methods. The 3-D doubly periodic structures can be represented as nonorthogonal lattices composed of general inhomogeneous bianisotropic media with arbitrarily-shaped metallic patches. Based on Floquet theory and periodic boundary conditions, the original stated problem that involves infinite periodic structures can be converted into a single unit cell. Using the equivalence principle, the derived BI equation formulation is applied to the top and bottom surfaces of the unit cell, which results in a perfectly reflectionless boundary condition for the FE-based approach. Then, the unit cell was meshed using triangular prismatic volume elements, which provide a great deal of flexibility in modeling complex planar geometries with arbitrary shapes in the transverse direction. The adaptive integral method (AIM) was employed to accelerate the calculation of the matrix-vector product for the BI portion within the iterative solver. Furthermore, a model-based parameter estimation (MBPE) technique was proposed for the wide-band interpolation of the required impedance matrix elements in the BI part for near field components that were used in the AIM procedure. The accuracy and efficiency of the proposed hybrid algorithms are demonstrated by the presented numerical results (e.g., in comparison with analytical solutions). Several simulation results are presented to illustrate the flexibility of the proposed methods for analysis of frequency selective surfaces with arbitrarily-shaped metallic patches, bianisotropic materials, and nonorthogonal lattice configurations.
Keywords :
anisotropic media; boundary integral equations; electromagnetic wave scattering; frequency selective surfaces; impedance matrix; inhomogeneous media; interpolation; mesh generation; parameter estimation; periodic structures; vectors; 3D doubly periodic structures; AIM techniques; BI equation formulation; FEBI methods; Floquet theory; MBPE techniques; adaptive integral method; arbitrarily-shaped metallic patches; bianisotropic materials; bianisotropic media; complex planar geometry modelling; equivalence principle; frequency selective surface analysis; general inhomogeneous bianisotropic media; hybrid finite element boundary integral method; impedance matrix elements; infinite periodic structures; matrix-vector product; model-based parameter estimation technique; near field components; nonorthogonal lattice configurations; perfectly reflectionless boundary condition; single unit cell; three-dimensional doubly periodic structures; transverse direction; triangular prismatic volume elements; wideband interpolation; Anisotropic magnetoresistance; Bismuth; Lattices; Mathematical model; Method of moments; Nonhomogeneous media; Periodic structures; Adaptive integral method (AIM); bianisotropic media; finite element; frequency selective surface (FSS); hybrid finite-element boundary integral (FEBI) methods; integral equation; model-based parameter estimation (MBPE); periodic structure; periodic structure with nonorthogonal lattice;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2014.2322903