• DocumentCode
    1364459
  • Title

    Compliant actuator designs

  • Author

    Ham, R. ; Sugar, Thomas G. ; Vanderborght, Bram ; Hollander, Kevin W. ; Lefeber, Dirk

  • Author_Institution
    Vrije Univ. Brussel, Brussels, Belgium
  • Volume
    16
  • Issue
    3
  • fYear
    2009
  • fDate
    9/1/2009 12:00:00 AM
  • Firstpage
    81
  • Lastpage
    94
  • Abstract
    In the growing fields of wearable robotics, rehabilitation robotics, prosthetics, and walking k robots, variable stiffness actuators (VSAs) or adjustable compliant actuators are being designed and implemented because of their ability to minimize large forces due to shocks, to safely interact with the user, and their ability to store and release energy in passive elastic elements. This review article describes the state of the art in the design of actuators with adaptable passive compliance. This new type of actuator is not preferred for classical position-controlled applications such as pick and place operations but is preferred in novel robots where safe human- robot interaction is required or in applications where energy efficiency must be increased by adapting the actuator´s resonance frequency. The working principles of the different existing designs are explained and compared. The designs are divided into four groups: equilibrium-controlled stiffness, antagonistic-controlled stiffness, structure-controlled stiffness (SCS), and mechanically controlled stiffness.
  • Keywords
    actuators; robots; actuator resonance frequency; adaptable passive compliance; adjustable compliant actuators; antagonistic-controlled stiffness; compliant actuator designs; equilibrium-controlled stiffness; mechanically controlled stiffness; prosthetics; rehabilitation robotics; safe human-robot interaction; structure-controlled stiffness; variable stiffness actuators; walking robots; wearable robotics; Actuators; Control systems; Energy efficiency; Human robot interaction; Legged locomotion; Muscles; Prosthetics; Rehabilitation robotics; Service robots; Trajectory; Controllable stiffness actuators; adjustable compliance actuators;
  • fLanguage
    English
  • Journal_Title
    Robotics & Automation Magazine, IEEE
  • Publisher
    ieee
  • ISSN
    1070-9932
  • Type

    jour

  • DOI
    10.1109/MRA.2009.933629
  • Filename
    5233419