• DocumentCode
    991086
  • Title

    Ground-plane-backed hemispherical Luneberg-lens reflector

  • Author

    Liang, Charles S. ; Streater, Donald A. ; Jin, Jian-Ming ; Dunn, Eric ; Rozendal, Timothy

  • Author_Institution
    Lockheed Martin Aeronaut. Co., Fort Worth, TX
  • Volume
    48
  • Issue
    1
  • fYear
    2006
  • Firstpage
    37
  • Lastpage
    49
  • Abstract
    A spherical Luneberg-lens reflector provides excellent passive wideband and wide-angular radar-signature augmentation, and has been widely used. Much of its signature-enhancement performance over half of its angular coverage can potentially be achieved by using a corresponding low-profile, hemispherical Luneberg-lens reflector, mounted on a reflective ground plane. This paper presents a quantitative study of a practical design of an off-the-shelf hemispherical Luneberg-lens reflector to gain insight and to fully explore its performance limits. Extensive wideband and wide-angle measurements were carried out for this lens configuration, and a comprehensive numerical analysis was also conducted, using the finite-element method combined with a boundary integral equation to complement the test data. The effect, in practice, of a finite-sized ground plane, and the resulting vertically polarized traveling-wave interference to the direct lens reflector´s return, were demonstrated. Key design issues are discussed, and potential solutions are suggested
  • Keywords
    boundary integral equations; finite element analysis; lens antennas; radar antennas; radar cross-sections; radar interference; reflector antennas; boundary integral equation; finite-element method; ground-plane-backed reflector; hemispherical Luneberg-lens reflector; off-the-shelf hemispherical reflector; passive wideband radar-signature augmentation; vertically polarized traveling-wave interference; wide-angular radar-signature augmentation; Broadband antennas; Electromagnetic scattering; Finite element methods; Integral equations; Lenses; Numerical analysis; Optical refraction; Performance gain; Radar antennas; Wideband;
  • fLanguage
    English
  • Journal_Title
    Antennas and Propagation Magazine, IEEE
  • Publisher
    ieee
  • ISSN
    1045-9243
  • Type

    jour

  • DOI
    10.1109/MAP.2006.1645559
  • Filename
    1645559