• DocumentCode
    966929
  • Title

    Mechanics Modeling of Tendon-Driven Continuum Manipulators

  • Author

    Camarillo, David B. ; Milne, Christopher F. ; Carlson, Christopher R. ; Zinn, Michael R. ; Salisbury, J. Kenneth

  • Author_Institution
    Biorobotics Lab., Stanford Univ., Stanford, CA
  • Volume
    24
  • Issue
    6
  • fYear
    2008
  • Firstpage
    1262
  • Lastpage
    1273
  • Abstract
    Continuum robotic manipulators articulate due to their inherent compliance. Tendon actuation leads to compression of the manipulator, extension of the actuators, and is limited by the practical constraint that tendons cannot support compression. In light of these observations, we present a new linear model for transforming desired beam configuration to tendon displacements and vice versa. We begin from first principles in solid mechanics by analyzing the effects of geometrically nonlinear tendon loads. These loads act both distally at the termination point and proximally along the conduit contact interface. The resulting model simplifies to a linear system including only the bending and axial modes of the manipulator as well as the actuator compliance. The model is then manipulated to form a concise mapping from beam configuration-space parameters to n redundant tendon displacements via the internal loads and strains experienced by the system. We demonstrate the utility of this model by implementing an optimal feasible controller. The controller regulates axial strain to a constant value while guaranteeing positive tendon forces and minimizing their magnitudes over a range of articulations. The mechanics-based model from this study provides insight as well as performance gains for this increasingly ubiquitous class of manipulators.
  • Keywords
    elasticity; manipulator dynamics; manipulator kinematics; medical robotics; nonlinear control systems; conduit contact interface; linear system; mechanics modeling; nonlinear tendon loads; optimal feasible controller; tendon-driven continuum manipulators; Cable drive; elastic manipulator; flexible manipulator; kinematics; redundant tendons; robotic surgery; slack tendon; snake robot; statics; tendon drive;
  • fLanguage
    English
  • Journal_Title
    Robotics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1552-3098
  • Type

    jour

  • DOI
    10.1109/TRO.2008.2002311
  • Filename
    4660316