• DocumentCode
    1941513
  • Title

    Discrete Luneburg lens fed by a spherical-circular printed antenna in axisymmetrical mode - accurate analysis by MAR

  • Author

    Rondineau, Sébastien ; Nosich, Alexander I. ; Himdi, Mohamed ; Daniel, Jean-Pierre

  • Author_Institution
    Inst. of Electron. & Telecommun. of Rennes, Rennes I Univ., France
  • Volume
    4
  • fYear
    2002
  • fDate
    2002
  • Firstpage
    406
  • Abstract
    Research has been carried out on circular microstrip antennas (MA) fed by a probe located at the center to ensure an omnidirectional pattern. Even more attractive are MAs conformally printed on curved surfaces, such as spherical-circular MA (SCMA). Many new applications need sophisticated antennas, which possess a number of special properties. Indeed, data transmissions via low Earth orbit satellites or military tracking X-band radar constrain one to have an agile scanning beam. A very attractive candidate for all these applications is the Luneburg lens (LL). Practically, LL is manufactured as a finite number of concentric homogeneous dielectric shells $this is called a discrete LL. The spherical geometry of both SCMA and LL enables one to simulate them with the same method. Here, we use the method of analytical regularization (MAR) sometimes called semi-inversion method. Generally, it converts a first-kind singular integral or series equation to a well-conditioned second-kind Fredholm matrix equation, and therefore serves as a perfect pre-conditioner of originally ill-posed problem. Then both numerical convergence and efficiency is achieved and matrix-truncation error is controlled.
  • Keywords
    Fredholm integral equations; conformal antennas; convergence of numerical methods; lens antennas; matrix algebra; microstrip antennas; military radar; radar antennas; satellite antennas; MAR; agile scanning beam; axisymmetrical mode; concentric homogeneous dielectric shells; conformal printed antenna; curved surfaces; data transmission; discrete Luneburg lens; first-kind singular integral; ill-posed problem pre-conditioner; low Earth orbit satellites; matrix-truncation error; method of analytical regularization; military tracking X-band radar; numerical convergence; omnidirectional radiation pattern; probe fed antennas; second-kind Fredholm matrix equation; semi-inversion method; series equation; spherical geometry; spherical-circular microstrip antennas; spherical-circular printed antenna; Data communication; Integral equations; Lenses; Low earth orbit satellites; Matrix converters; Microstrip antennas; Military satellites; Probes; Radar tracking; Transmission line matrix methods;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Antennas and Propagation Society International Symposium, 2002. IEEE
  • Print_ISBN
    0-7803-7330-8
  • Type

    conf

  • DOI
    10.1109/APS.2002.1017008
  • Filename
    1017008