• DocumentCode
    794576
  • Title

    Improved Detectability in Medical Microwave Radio-Thermometers as Obtained by Active Antennas

  • Author

    Jacobsen, Svein ; Klemetsen, Oystein

  • Author_Institution
    Dept. of Phys. & Technol., Univ. of Tromso, Tromso
  • Volume
    55
  • Issue
    12
  • fYear
    2008
  • Firstpage
    2778
  • Lastpage
    2785
  • Abstract
    Microwave radiometry is a spectral measurement technique for resolving blackbody radiation of heated matter above absolute zero. The emission levels vary with frequency and are at body temperatures maximized in the infrared spectral band. Medical radio-thermometers are mostly noninvasive short-range instruments that can provide temperature distributions in subcutaneous biological tissues when operated in the microwave region. However, a crucial limitation of the microwave radiometric observation principle is the extremely weak signal level of the thermal noise emitted by the lossy material (-174 dBm/Hz at normal body temperature). To improve the radiometer SNR, we propose to integrate a tiny, moderate gain, low-noise preamplifier (LNA) close to the antenna terminals as to obtain increased detectability of deep seated thermal gradients within the volume under investigation. The concept is verified experimentally in a lossy phantom medium by scanning an active antenna across a thermostatically controlled water phantom with a hot object embedded at 38 mm depth. Three different setups were investigated with decreasing temperature contrasts between the target and ambient medium. As a direct consequence of less ripple on the raw radiometric signal, statistical analysis shows a marked increase in signal-to-clutter ratio of the brightness temperature spatial scan profiles, when comparing active antenna operation with conventional passive setups.
  • Keywords
    active antennas; biological tissues; biomedical imaging; blackbody radiation; low noise amplifiers; microwave imaging; phantoms; radiometry; active antennas; blackbody radiation; brightness temperature spatial scan profile; deep seated thermal gradients; detectability; lossy phantom medium; low-noise preamplifier; medical microwave radiothermometers; microwave radiometry; signal-to-clutter ratio; statistical analysis; subcutaneous biological tissues; thermostatically controlled water phantom; Electromagnetic heating; Frequency; Imaging phantoms; Infrared spectra; Instruments; Measurement techniques; Microwave antennas; Microwave radiometry; Microwave theory and techniques; Temperature; Detectability; microwave radiometry; preamplifier; radio-thermometry; signal-to-clutter ratio (SCR); Amplifiers, Electronic; Artifacts; Equipment Design; Microwaves; Radiometry; Sensitivity and Specificity; Subcutaneous Tissue; Temperature; Thermal Conductivity; Thermometers;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2008.2002156
  • Filename
    4564191