• DocumentCode
    679901
  • Title

    Radiation quality factor analysis of planar phased arrays

  • Author

    Pozar, David M. ; Do-Hoon Kwon

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Univ. of Massachusetts Amherst, Amherst, MA, USA
  • fYear
    2013
  • fDate
    15-18 Oct. 2013
  • Firstpage
    738
  • Lastpage
    745
  • Abstract
    The energy storage and radiation quality factor of infinite planar phased arrays are studied for several cases of practical interest, including dipole arrays in free space and over a ground plane, as well as more general infinite phased arrays modeled with planar currents that excite only a small number of Floquet modes. The radiation Q is computed in a manner analogous to the classic Chu result for finite sized antenna elements [1], by calculating the stored electric and magnetic energies contained in a unit cell volume of the array (minus the energy density associated with the radiation field), and by calculating the radiated power from each unit cell. This is done using a full-wave moment method approach, with the appropriate Green´s function for the geometry under consideration [2] (i.e., free-space, or over a ground plane). For lossless arrays in free space, in the absence of grating lobes, it is known that radiated power is contained only in the (0,0) Floquet mode, and that stored energy is contained only in higher order Floquet modes. This is in contrast to the Chu results for finite antennas, where each spherical wave mode contains some radiated power and some stored energy. The result is slightly different for arrays over a ground plane, where the (0,0) Floquet mode may contribute to the stored energies in the volume between the ground plane and the current elements. Both the radiated power and stored energies are evaluated in terms of the two-dimensional spectral domain Floquet mode series representation and the Fourier transform of the element current. Mode-by-mode correspondence of each Floquet mode contribution to the element input impedance is demonstrated, as is satisfaction of the complex Poynting theorem. The exact quality factor results are compared with approximate values based on the input impedance vs frequency from an independent calculation.
  • Keywords
    Fourier series; Fourier transforms; Green´s function methods; antenna phased arrays; antenna radiation patterns; dipole antenna arrays; electric impedance; geometry; method of moments; planar antenna arrays; 2D spectral domain Floquet mode series representation; Chu results; Fourier transform; Green´s function; complex Poynting theorem; dipole arrays; element input impedance; energy density; energy storage; finite sized antenna elements; full-wave moment method approach; general infinite phased arrays; grating lobe absence; higher order Floquet modes; infinite planar phased arrays; mode-by-mode correspondence; planar currents; radiated power calculation; radiation field; radiation quality factor analysis; spherical wave mode; stored electric energy calculation; stored magnetic energy calculation; unit cell volume; Bandwidth; Energy storage; Impedance; Manganese; Phased arrays; Q-factor; Antenna arrays; antenna bandwidth; phased arrays; quality factor;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Phased Array Systems & Technology, 2013 IEEE International Symposium on
  • Conference_Location
    Waltham, MA
  • Type

    conf

  • DOI
    10.1109/ARRAY.2013.6731922
  • Filename
    6731922