• DocumentCode
    1550872
  • Title

    A methodology and model for the pull-in parameters of electrostatic actuators

  • Author

    Nemirovsky, Yael ; Bochobza-Degani, Ofir

  • Author_Institution
    Dept. of Electr. Eng., Technion-Israel Inst. of Technol., Haifa, Israel
  • Volume
    10
  • Issue
    4
  • fYear
    2001
  • fDate
    12/1/2001 12:00:00 AM
  • Firstpage
    601
  • Lastpage
    615
  • Abstract
    This paper presents a generalized model for the pull-in phenomenon in electrostatic actuators with a single input, either charge or voltage. The pull-in phenomenon of a general electrostatic actuator with a single input is represented by an algebraic equation referred to as the pull-in equation. This equation directly yields the pull-in parameters, namely, the pull-in voltage or pull-in charge and the pull-in displacement. The model presented here permits the analysis of a wide range of cases, including nonlinear mechanical effects as well as various nonlinear, nonideal, and parasitic electrical effects. In some of the cases, an analytic solution is derived, which provides physical insight into how the pull-in parameters depend upon the design and properties of the actuator. The pull-in equation can also yield rapid numerical solutions, allowing interactive and optimal design. The model is then utilized to analyze analytically the case of a Duffing spring, previously analyzed numerically by Hung and Senturia, and captures the variations of the pull-in parameters in the continuum between a perfectly linear spring and a cubic spring. Several other case studies are described and analyzed using the pull-in equation, including parallel-plate and tilted-plate (torsion) actuators taking into account the fringing field capacitance, feedback and parasitic capacitance, trapped charges, an external force, and large displacements
  • Keywords
    electrostatic actuators; torsion; Duffing spring; algebraic equation; cubic spring; electrostatic actuators; feedback; fringing field capacitance; interactive design; large displacements; nonlinear mechanical effects; optimal design; parallel-plate actuators; parasitic electrical effects; perfectly linear spring; pull-in parameters; rapid numerical solutions; single input; tiltedplate actuators; torsion actuators; trapped charges; Conductors; Electrostatic actuators; Electrostatic analysis; Force feedback; Medical services; Micromechanical devices; Nonlinear equations; Parasitic capacitance; Springs; Voltage;
  • fLanguage
    English
  • Journal_Title
    Microelectromechanical Systems, Journal of
  • Publisher
    ieee
  • ISSN
    1057-7157
  • Type

    jour

  • DOI
    10.1109/84.967384
  • Filename
    967384