• DocumentCode
    800542
  • Title

    Time-Domain Dyadic Green´s Function for an Electric Source in a Conductive Plate

  • Author

    Bowler, John R. ; Fu, Fangwei

  • Author_Institution
    Iowa State Univ., Ames, IA
  • Volume
    42
  • Issue
    11
  • fYear
    2006
  • Firstpage
    3661
  • Lastpage
    3668
  • Abstract
    We have determined the quasi-static time-domain dyadic Green´s function for an electric source in a conductive plate for use in electric field integral equations. Starting with a frequency-domain representation, we constructed the dyadic kernel from electric and magnetic scalar potentials defined with respect to a preferred direction normal to plate. The final time-domain expression has three parts: a free-space term, multiple image terms, and partial reflection terms. The free-space fundamental solution is expressed in terms of a three-dimensional Gaussian bell curve satisfying the diffusion equation. Similarly, the image terms are expressed in the same form with coordinates shifted so that each Gaussian curve centers on an image point. In order to carry out the inverse Laplace transform from the frequency domain to the time domain, we expand the partial reflection functions as asymptotic series before transforming them analytically. The resulting expression for dyadic Green´s kernel can be evaluated efficiently and with well-controlled accuracy
  • Keywords
    Gaussian processes; Green´s function methods; Laplace transforms; conducting materials; electric field integral equations; frequency-domain analysis; time-domain analysis; 3D Gaussian bell curve; conductive plate; diffusion equation; dyadic kernel; electric field integral equations; electric scalar potentials; electric source; free-space term; frequency-domain representation; inverse Laplace transform; magnetic scalar potentials; multiple image terms; partial reflection functions; partial reflection terms; time-domain dyadic Green function; Conductors; Eddy currents; Green´s function methods; Integral equations; Kernel; Laplace equations; Nonuniform electric fields; Probes; Reflection; Time domain analysis; Conductive plate; dyadic Green´s function; transient eddy current;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2006.881736
  • Filename
    1715675