• DocumentCode
    1125541
  • Title

    Harmonic Radar Systems for Near-Ground In-Foliage Nonlinear Scatterers

  • Author

    Hstger, R.O.

  • Author_Institution
    University of Maryland College Park, MD 20742
  • Issue
    2
  • fYear
    1976
  • fDate
    3/1/1976 12:00:00 AM
  • Firstpage
    230
  • Lastpage
    245
  • Abstract
    The radar transmission equation for a harmonic radar operating over a planar, finite dielectric Earth through foliage is derived for an interesting class of nonlinear scatterers. The received power can typically depend on range to the (-14) power for small objects near the ground. The maximum detection range of a ground-based system is related to all major system parameters: it is most sensitive to polarization, transmit antenna height, and transmit wavelength; moderately sensitive to transmit power and transmit antenna area; and least sensitive to receive antenna area, harmonic scattering cross section, and mode of data processing. For example, there is seen to be a best apportionment of total available aperture area into disjoint transmit and receive apertures which can be well approximated by the equal gain condition. Also, there is seen to be a critical path distance through foliage; at distances less than this, small wavelengths are desirable and, conversely, the upper transmit frequency limit may be set by nonlinear scatterer response. Airborne synthetic aperture radar systems are discussed and quantification of harmonic noise and effects of scatterer fluctuation are made. A useful phenomenological model of a nonlinear scatterer is given that is consistent with some observations and predicts a frequency dependence. Nonlinear scatterer effects on range resolution are discussed.
  • Keywords
    Apertures; Dielectrics; Earth; Nonlinear equations; Polarization; Power system harmonics; Radar detection; Radar scattering; Receiving antennas; Transmitting antennas;
  • fLanguage
    English
  • Journal_Title
    Aerospace and Electronic Systems, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9251
  • Type

    jour

  • DOI
    10.1109/TAES.1976.308301
  • Filename
    4101626