• DocumentCode
    54829
  • Title

    Study of terahertz LFMCW imaging radar with hilbert transform receiver

  • Author

    Zheng Lu ; Chao Li ; Xiang Gao ; Guangyou Fang

  • Author_Institution
    Key Lab. of Electromagn. Radiat. & Sensing Technol., Inst. of Electron., Beijing, China
  • Volume
    50
  • Issue
    7
  • fYear
    2014
  • fDate
    March 27 2014
  • Firstpage
    549
  • Lastpage
    550
  • Abstract
    A linear frequency-modulated continuous-wave (LFMCW) radar with a simplified single homodyne channel is proposed and developed in the 0.22 THz band. The transmitter employs direct digital waveform synthesiser technology to obtain a reliable fast scanning LFMCW source, the scanning speed of which is 40 μs with an instantaneous bandwidth of 14.4 GHz. To realise the nonlinearity calibration and coherent imaging, the quadrature signal is recovered by a Hilbert transform receiver to obtain the phase information of the return wave. The radar operates using the real-aperture imaging method and uses a lens to focus the Gauss beam which determines the azimuth resolution. The results of the pulse compression and imaging experiments verify the effectiveness of the proposed imaging scheme in the 0.22 THz band. The radar can be used for non-destructive testing and security checks.
  • Keywords
    CW radar; FM radar; Hilbert transforms; lenses; radar imaging; radio receivers; radio transmitters; Gauss beam; Hilbert transform receiver; azimuth resolution; bandwidth 14.4 GHz; coherent imaging; direct digital waveform synthesiser technology; frequency 0.22 THz; lens; linear frequency-modulated continuous wave radar; nondestructive testing; nonlinearity calibration; phase information; pulse compression; quadrature signal; real-aperture imaging method; reliable fast scanning LFMCW source; return wave; security check; single homodyne channel; terahertz LFMCW imaging radar; time 40 mus; transmitter;
  • fLanguage
    English
  • Journal_Title
    Electronics Letters
  • Publisher
    iet
  • ISSN
    0013-5194
  • Type

    jour

  • DOI
    10.1049/el.2014.0085
  • Filename
    6780250