• DocumentCode
    1169713
  • Title

    A hybrid finite element-boundary integral method for the analysis of cavity-backed antennas of arbitrary shape

  • Author

    Gong, Jian ; Volakis, John L. ; Woo, A.C. ; Wang, H.T.G.

  • Author_Institution
    Radiation Lab., Michigan Univ., Ann Arbor, MI, USA
  • Volume
    42
  • Issue
    9
  • fYear
    1994
  • fDate
    9/1/1994 12:00:00 AM
  • Firstpage
    1233
  • Lastpage
    1242
  • Abstract
    An edge-based hybrid finite element-boundary integral (FE-BI) formulation using tetrahedral elements is described for scattering and radiation analysis of arbitrarily shaped cavity-backed patch antennas. By virtue of the finite element method (FEM), the cavity irregularities, the dielectric super/substrate inhomogeneities, and the diverse excitation schemes inside the cavity may be readily modeled when tetrahedral elements are used to discretize the cavity. On the aperture, the volume mesh reduces to a triangular grid allowing the modeling of nonrectangular patches. Without special handling of the boundary integral system, this formulation is typically applicable to cavity-backed antenna systems with moderate aperture size. To retain an O(N) memory requirement, storage of the full matrix due to the boundary integral equation is avoided by resorting to a structured triangular aperture grid and taking advantage of the integral´s convolutional property. If necessary, this is achieved by overlaying a structured triangular grid on the unstructured triangular grid and relating the edge field coefficients between the two grids via two narrow banded transformation matrices. The combined linear system of equations is solved via the biconjugate gradient (BICG) method, and the FFT algorithm is incorporated to compute the matrix-vector product efficiently, with minimal storage requirements
  • Keywords
    antenna radiation patterns; boundary-elements methods; conjugate gradient methods; electromagnetic wave scattering; fast Fourier transforms; finite element analysis; integral equations; matrix algebra; microstrip antennas; FEM; FFT algorithm; aperture size; biconjugate gradient method; cavity irregularities; cavity-backed patch antennas; convolutional property; dielectric super/substrate inhomogeneities; edge field coefficients; edge-based hybrid method; finite element method; finite element-boundary integral method; linear equations; matrix-vector product; nonrectangular patches; radiation analysis; scattering analysis; tetrahedral elements; transformation matrices; triangular grid; volume mesh; Anisotropic magnetoresistance; Aperture antennas; Dielectrics; Finite element methods; Integral equations; Microstrip antennas; Patch antennas; Probes; Scattering; Shape;
  • fLanguage
    English
  • Journal_Title
    Antennas and Propagation, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-926X
  • Type

    jour

  • DOI
    10.1109/8.318644
  • Filename
    318644