• DocumentCode
    1076134
  • Title

    Analysis, Design, and Control of a Transcutaneous Power Regulator for Artificial Hearts

  • Author

    Qianhong Chen ; Siu Chung Wong ; Tse, Chi K. ; Xinbo Ruan

  • Volume
    3
  • Issue
    1
  • fYear
    2009
  • Firstpage
    23
  • Lastpage
    31
  • Abstract
    Based on a generic transcutaneous transformer model, a remote power supply using a resonant topology for use in artificial hearts is analyzed and designed for easy controllability and high efficiency. The primary and secondary windings of the transcutaneous transformer are positioned outside and inside the human body, respectively. In such a transformer, the alignment and gap may change with external positioning. As a result, the coupling coefficient of the transcutaneous transformer is also varying, and so are the two large leakage inductances and the mutual inductance. Resonant-tank circuits with varying resonant-frequency are formed from the transformer inductors and external capacitors. For a given range of coupling coefficients, an operating frequency corresponding to a particular coupling coefficient can be found, for which the voltage transfer function is insensitive to load. Prior works have used frequency modulation to regulate the output voltage under varying load and transformer coupling. The use of frequency modulation may require a wide control frequency range which may extend well above the load insensitive frequency. In this paper, study of the input-to-output voltage transfer function is carried out, and a control method is proposed to lock the switching frequency at just above the load insensitive frequency for optimized efficiency at heavy loads. Specifically, operation at above resonant of the resonant circuits is maintained under varying coupling-coefficient. Using a digital-phase-lock-loop (PLL), zero-voltage switching is achieved in a full-bridge converter which is also programmed to provide output voltage regulation via pulsewidth modulation (PWM). A prototype transcutaneous power regulator is built and found to to perform excellently with high efficiency and tight regulation under variations of the alignment or gap of the transcutaneous transformer, load and input voltage.
  • Keywords
    artificial organs; electrical faults; phase locked loops; prosthetic power supplies; pulse width modulation; transfer function matrices; transformers; artificial hearts; digital phase-lock-loop; leakage inductances; mutual inductance; pulsewidth modulation; remote power supply; resonant-tank circuits; switching frequency; transcutaneous power regulator; transcutaneous transformer model; transformer inductors; voltage transfer function; zero voltage switching; Artificial heart; Coupling circuits; Frequency modulation; Pulse width modulation; Pulse width modulation converters; RLC circuits; Regulators; Resonance; Transfer functions; Voltage control; Phase-locked loop (PLL); pulsewidth modulation (PWM) control; resonant converter; transcutaneous power regulator;
  • fLanguage
    English
  • Journal_Title
    Biomedical Circuits and Systems, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1932-4545
  • Type

    jour

  • DOI
    10.1109/TBCAS.2008.2006492
  • Filename
    4757208