• DocumentCode
    741927
  • Title

    A Canonical UTD Solution for Electromagnetic Scattering by an Electrically Large Impedance Circular Cylinder Illuminated by an Obliquely Incident Plane Wave

  • Author

    Aguilar, Andres G. ; Pathak, Parth H. ; Sierra-Perez, Manuel

  • Author_Institution
    Syst. & Radiocommun., Univ. Politec. de Madrid, Madrid, Spain
  • Volume
    61
  • Issue
    10
  • fYear
    2013
  • Firstpage
    5144
  • Lastpage
    5154
  • Abstract
    A uniform geometrical theory of diffraction (UTD) solution is developed for the canonical problem of the electromagnetic (EM) scattering by an electrically large circular cylinder with a uniform impedance boundary condition (IBC), when it is illuminated by an obliquely incident high frequency plane wave. A solution to this canonical problem is first constructed in terms of an exact formulation involving a radially propagating eigenfunction expansion. The latter is converted into a circumferentially propagating eigenfunction expansion suited for large cylinders, via the Watson transform, which is expressed as an integral that is subsequently evaluated asymptotically, for high frequencies, in a uniform manner. The resulting solution is then expressed in the desired UTD ray form. This solution is uniform in the sense that it has the important property that it remains continuous across the transition region on either side of the surface shadow boundary. Outside the shadow boundary transition region it recovers the purely ray optical incident and reflected ray fields on the deep lit side of the shadow boundary and to the modal surface diffracted ray fields on the deep shadow side. The scattered field is seen to have a cross-polarized component due to the coupling between the TEz and TMz waves (where z is the cylinder axis) resulting from the IBC. Such cross-polarization vanishes for normal incidence on the cylinder, and also in the deep lit region for oblique incidence where it properly reduces to the geometrical optics (GO) or ray optical solution. This UTD solution is shown to be very accurate by a numerical comparison with an exact reference solution.
  • Keywords
    eigenvalues and eigenfunctions; electromagnetic wave scattering; transforms; EM scattering; IBC; UTD; Watson transform; canonical UTD solution; cross polarization; eigenfunction expansion; electrically large impedance circular cylinder; electromagnetic scattering; frequency plane wave; geometrical optics; impedance boundary condition; oblique incidence; obliquely incident plane wave; ray optical incident; reflected ray fields; shadow boundary; surface shadow boundary; uniform geometrical theory of diffraction; Impedance; Optical diffraction; Optical scattering; Optical surface waves; Surface impedance; Surface waves; Approximation methods; cylinders; impedance boundary conditions; scattering; surface waves; uniform theory of diffraction;
  • fLanguage
    English
  • Journal_Title
    Antennas and Propagation, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-926X
  • Type

    jour

  • DOI
    10.1109/TAP.2013.2274691
  • Filename
    6567919