• DocumentCode
    956506
  • Title

    Impedance of the eddy-current displacement probe: the transformer model

  • Author

    Vyroubal, Darko

  • Author_Institution
    Polytech. of Karlovac, Croatia
  • Volume
    53
  • Issue
    2
  • fYear
    2004
  • fDate
    4/1/2004 12:00:00 AM
  • Firstpage
    384
  • Lastpage
    391
  • Abstract
    A new approach to calculation of the impedance of the eddy-current displacement probe is presented. It is based on the transformer model of the probe-to-target coupling. The usual method of calculating the impedance by solving for the electromagnetic field distribution in the probe and the conductive target involves solution of integral equations. Instead, a simpler approach is possible by modeling the probe-to-target coupling as a loaded transformer, involving only linear ac circuit analysis and elliptic integrals (readily available in MATHCAD, MATLAB, etc.). The model transformer has single primary and multiple secondary windings. The primary winding models the probe coil, while the distributed Eddy current´s circulation paths are modeled by multiple secondary windings. The target active area (the eddy current´s carrying area) is divided into concentric rings. Each ring is modeled as a single-turn secondary loaded with the ring impedance. Simulation shows that division of the target active area into a moderate number of rings (16) is sufficient for very good accuracy of the model. Accuracy was checked by comparison of the simulated transfer curve of the displacement transducer to the measured transfer curve of the actual transducer. The agreement between the model and the measurement is very good. The model can be used to investigate the influence of various coil shapes and target materials on linearity and sensitivity of the eddy-current displacement transducer.
  • Keywords
    eddy currents; electric impedance; probes; transducers; Eddy currents; Eddy-current displacement transducer; concentric rings; conductive target; eddy current carrying area; eddy-current displacement probe; electromagnetic field distribution; elliptic integrals; impedance calculation; integral equations; linear ac circuit analysis; loaded transformer; model transformer; multiple secondary winding; probe coil; probe-to-target coupling; ring impedance; single primary winding; transducer linearity; transfer curve; transformer model; Circuit analysis; Coils; Coupling circuits; Electromagnetic fields; Impedance; Integral equations; MATLAB; Mathematical model; Probes; Transducers;
  • fLanguage
    English
  • Journal_Title
    Instrumentation and Measurement, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9456
  • Type

    jour

  • DOI
    10.1109/TIM.2003.822705
  • Filename
    1284869