• DocumentCode
    2477355
  • Title

    Analog IQ impairments in Zero-IF radar receivers: Analysis, measurements and digital compensation

  • Author

    Vallant, G. ; Epp, M. ; Schlecker, W. ; Schneider, U. ; Anttila, L. ; Valkama, M.

  • Author_Institution
    Cassidian, Digital Equip., EADS Deutschland GmbH, Ulm, Germany
  • fYear
    2012
  • fDate
    13-16 May 2012
  • Firstpage
    1703
  • Lastpage
    1707
  • Abstract
    We address the Zero-IF or homodyne radio architecture as a pursuable way for small Radar receivers. While Zero-IF is beneficial for integration, several inherent analog impairments place a limit on the achievable dynamic range. The most dominant non-idealities are gain and phase imbalance in the IQ branches, mixer nonlinearity, and DC Offset. In the case of IQ Imbalance, careful receiver design can at best achieve an Image Rejection Ratio (IRR) of 30-40 dB. Also, IQ imbalance tends to be frequency-dependent with increasing bandwidth (BW). It has to be investigated, whether sophisticated digital post-processing is able to deliver a dynamic range sufficient for Pulse-Doppler Radar. After establishing some theoretical background and proposing digital correction methods, we will present hardware measurements of frequency-dependent IQ imbalance made on a Zero-IF receiver with large bandwidth. Despite significant improvements can be achieved using an offline calibration, time-varying drifts due to temperature changes will degrade the achievable IRR. Therefore adaptive circularity-based algorithms should be applied to track those changes. However, Radar Chirp signals at complex baseband (BB) cannot be used directly, as they are not circular. To restore the circularity for estimating the Complementary Autocorrelation Function (CACF), we propose applying a digital band-stop to the operational data beforehand. Highly increased IRR values are technically feasible: Digital Assistance acting jointly with state-of-the-art RF circuit design can pave the way for adequate performance in integrated receiver solutions.
  • Keywords
    Doppler radar; band-stop filters; mixers (circuits); radar receivers; radar signal processing; CACF; DC offset; IRR values; RF circuit design; adaptive circularity-based algorithm; analog IQ impairment; complementary autocorrelation function; digital assistance; digital compensation; digital correction method; digital post-processing; dynamic range; gain imbalance; hardware measurement; homodyne radio architecture; image rejection ratio; inherent analog impairment; integrated receiver solution; mixer nonlinearity; offline calibration; phase imbalance; pulse-Doppler radar; radar chirp signal; receiver design; time-varying drifts; zero-IF radar receiver; zero-IF radio architecture; Chirp; Dynamic range; Frequency measurement; Mixers; Radar tracking; Receivers; DBF; Digital Assistance; IQ Imbalance; IRR; Post-Correction; Pulse-Doppler Radar; SFDR; Zero-IF;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Instrumentation and Measurement Technology Conference (I2MTC), 2012 IEEE International
  • Conference_Location
    Graz
  • ISSN
    1091-5281
  • Print_ISBN
    978-1-4577-1773-4
  • Type

    conf

  • DOI
    10.1109/I2MTC.2012.6229222
  • Filename
    6229222