• DocumentCode
    1859492
  • Title

    Antenna Modeling with the Hybrid Finite Element - Boundary Integral - Multilevel Fast Multipole - Uniform Geometrical Theory of Diffraction Method

  • Author

    Tzoulis, A. ; Eibert, T.F.

  • Author_Institution
    lnst. of High Frequency Phys. & Radar Techniques, Wachtberg
  • fYear
    2007
  • fDate
    28-30 March 2007
  • Firstpage
    91
  • Lastpage
    95
  • Abstract
    In many antenna applications, the environment of the radiating system has a significant effect on the overall radiation of the antenna and should be taken into account in the simulations. The involved objects are often electrically very large, so that numerical techniques combining ray optical asymptotic methods are preferred to handle such configurations. In this contribution, simulation results of electromagnetic radiation problems including environment effects are presented, using the recently developed hybrid method, which combines the Uniform Geometrical Theory of Diffraction (UTD) with the Finite Element Boundary Integral (FEBI) technique and with the Multilevel Fast Multipole Method (MLFMM). Electrically large and simple flat objects in the neighborhood of antennas are treated with UTD, providing full electromagnetic coupling with composite metallic/dielectric arbitrarily shaped FEB! objects. Thereby, double diffracted high-frequency fields on pairs of straight metallic non-coplanar and skewed edges are taken into account using the hard and soft scalar diffraction coefficients of UTD. Also, near-field computations in the postprocessing stage are efficiently accelerated by MLFMM, where ray optical contributions due to the presence of electrically large objects are taken into account according to the hybridization of MLFMM with UTD.
  • Keywords
    antenna radiation patterns; antennas; boundary integral equations; electromagnetic wave diffraction; electromagnetic wave propagation; finite element analysis; geometrical theory of diffraction; antenna modeling; diffraction uniform geometrical theory; double diffracted high-frequency field; electromagnetic radiation; environment effects; finite element-boundary integral; multilevel fast multipole method; ray optical; straight metallic noncoplanar skewed edge; Antenna theory; Electromagnetic coupling; Electromagnetic diffraction; Electromagnetic radiation; Finite element methods; Geometrical optics; Integral equations; Optical diffraction; Physical theory of diffraction; Solid modeling;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Antennas, 2007. INICA '07. 2nd International ITG Conference on
  • Conference_Location
    Munich
  • Print_ISBN
    978-3-00-021643-5
  • Electronic_ISBN
    978-3-00-021643-5
  • Type

    conf

  • DOI
    10.1109/INICA.2007.4353939
  • Filename
    4353939