• DocumentCode
    1456442
  • Title

    Confocal Ellipsoidal Reflector System for a Mechanically Scanned Active Terahertz Imager

  • Author

    Llombart, Nuria ; Cooper, Ken B. ; Dengler, Robert J. ; Bryllert, Tomas ; Siegel, Peter H.

  • Volume
    58
  • Issue
    6
  • fYear
    2010
  • fDate
    6/1/2010 12:00:00 AM
  • Firstpage
    1834
  • Lastpage
    1841
  • Abstract
    We present the design of a reflector system that can rapidly scan and refocus a terahertz beam for high-resolution standoff imaging applications. The proposed optical system utilizes a confocal Gregorian geometry with a small mechanical rotating mirror and an axial displacement of the feed. For operation at submillimeter wavelengths and standoff ranges of many meters, the imaging targets are electrically very close to the antenna aperture. Therefore the main reflector surface must be an ellipse, instead of a parabola, in order to achieve the best imaging performance. Here we demonstrate how a simple design equivalence can be used to generalize the design of a Gregorian reflector system based on a paraboloidal main reflector to one with an ellipsoidal main reflector. The system parameters are determined by minimizing the optical path length error, and the results are validated with numerical simulations from the commercial antenna software package GRASP. The system is able to scan the beam over 0.5 m in cross-range at a 25 m standoff range with less than 1% increase of the half-power beam-width.
  • Keywords
    aperture antennas; optical elements; optical images; reflector antennas; scanning antennas; terahertz wave imaging; aperture antenna; confocal Gregorian geometry; confocal ellipsoidal reflector system; mechanically scanned active terahertz imager; standoff imaging applications; Aperture antennas; Apertures; Biomedical optical imaging; Clothing; Frequency; High-resolution imaging; Image resolution; Laboratories; Millimeter wave technology; Optical imaging; Propulsion; Radar antennas; Radar imaging; Signal resolution; Space technology; Reflector antennas; THz; scanning antennas; submillimeter-wavelength imaging; terahertz radar;
  • fLanguage
    English
  • Journal_Title
    Antennas and Propagation, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-926X
  • Type

    jour

  • DOI
    10.1109/TAP.2010.2046860
  • Filename
    5439798