• DocumentCode
    3855241
  • Title

    Adaptive vibration suppression system: an iterative control law for a piezoelectric actuator shunted by a negative capacitor

  • Author

    Milos Kodejska;Pavel Mokry;Vaclav Linhart;Jan Vaclavik;Tomas Sluka

  • Author_Institution
    Faculty of Mechatronics, Informatics, and Interdisciplinary Studies, Technical University of Liberec, Liberec, Czech Republic
  • Volume
    59
  • Issue
    12
  • fYear
    2012
  • Firstpage
    2785
  • Lastpage
    2796
  • Abstract
    An adaptive system for the suppression of vibration transmission using a single piezoelectric actuator shunted by a negative capacitance circuit is presented. It is known that by using a negative-capacitance shunt, the spring constant of a piezoelectric actuator can be controlled to extreme values of zero or infinity. Because the value of spring constant controls a force transmitted through an elastic element, it is possible to achieve a reduction of transmissibility of vibrations through the use of a piezoelectric actuator by reducing its effective spring constant. Narrow frequency range and broad frequency range vibration isolation systems are analyzed, modeled, and experimentally investigated. The problem of high sensitivity of the vibration control system to varying operational conditions is resolved by applying an adaptive control to the circuit parameters of the negative capacitor. A control law that is based on the estimation of the value of the effective spring constant of a shunted piezoelectric actuator is presented. An adaptive system which achieves a self-adjustment of the negative capacitor parameters is presented. It is shown that such an arrangement allows the design of a simple electronic system which offers a great vibration isolation efficiency under variable vibration conditions.
  • Keywords
    "Vibrations","Capacitors","Piezoelectric actuators","Springs","Impedance","Capacitance","Frequency measurement"
  • Journal_Title
    IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control
  • Publisher
    ieee
  • ISSN
    0885-3010
  • Type

    jour

  • DOI
    10.1109/TUFFC.2012.2520
  • Filename
    6373802