• DocumentCode
    2767804
  • Title

    Electromagnetic scattering from homogeneous dielectric bodies using the finite difference delay modeling method

  • Author

    Wang, Xiaobo ; Weile, Daniel S.

  • Author_Institution
    Dept. of Electr. & Comp. Eng., Univ. of Delaware, Newark, DE
  • fYear
    2008
  • fDate
    5-11 July 2008
  • Firstpage
    1
  • Lastpage
    4
  • Abstract
    In recent years, time domain integral equation (TDIE) based methods for solving electromagnetic problems have become popular due to improvements in their stability and accuracy. Particular attention has been paid to conductive scatterers. One scheme uses noncausal temporal bases and bandlimited extrapolation technique applying on the conductors, and then makes an extension to the dielectric bodies. While this approach is very accurate, it only works for small step sizes and can be made unstable in rare cases. Other methods can be made stable in all cases but cannot model curved geometry. A newer method, called finite difference delay modeling (FDDM), appears to be absolutely stable and accurate. The temporal discretization is made based on a finite difference inspired mapping from the Laplace domain to the z-transform domain. In this paper, we continue to extend this new scheme to model the scattering from homogeneous dielectric bodies based on the coupled Poggio-Miller-Chang-Harrington-Wu (Tsai) (PMCHW) equations. First- and second-order unconditionally stable methods are applied. The FDDM method has predictable stability and absolute convergence properties when applied to arbitrary structures. Low frequency instability problems can be avoided by well-known stabilization techniques.
  • Keywords
    dielectric bodies; electromagnetic wave scattering; finite difference methods; Laplace domain; absolute convergence; arbitrary structure; bandlimited extrapolation technique; coupled Poggio-Miller-Chang-Harrington-Wu equation; electromagnetic scattering; finite difference delay modeling method; first-order unconditional stable method; homogeneous dielectric bodies; noncausal temporal bases; second-order unconditional stable method; time domain integral equation; z-transform domain; Conductors; Delay; Dielectrics; Electromagnetic modeling; Electromagnetic scattering; Extrapolation; Finite difference methods; Integral equations; Solid modeling; Stability;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Antennas and Propagation Society International Symposium, 2008. AP-S 2008. IEEE
  • Conference_Location
    San Diego, CA
  • Print_ISBN
    978-1-4244-2041-4
  • Electronic_ISBN
    978-1-4244-2042-1
  • Type

    conf

  • DOI
    10.1109/APS.2008.4619351
  • Filename
    4619351