• DocumentCode
    29591
  • Title

    Continuum Robot Dynamics Utilizing the Principle of Virtual Power

  • Author

    Rone, William S. ; Ben-Tzvi, Pinhas

  • Author_Institution
    George Washington Univ., Washington, DC, USA
  • Volume
    30
  • Issue
    1
  • fYear
    2014
  • fDate
    Feb. 2014
  • Firstpage
    275
  • Lastpage
    287
  • Abstract
    Efficient formulations for the dynamics of continuum robots are necessary to enable accurate modeling of the robot´s shape during operation. Previous work in continuum robotics has focused on low-fidelity lumped parameter models, in which actuated segments are modeled as circular arcs, or computationally intensive high-fidelity distributed parameter models, in which continuum robots are modeled as a parameterized spatial curve. In this paper, a novel dynamic modeling methodology is studied that captures curvature variations along a segment using a finite set of kinematic variables. This dynamic model is implemented using the principle of virtual power (also called Kane´s method) for a continuum robot. The model is derived to account for inertial, actuation, friction, elastic, and gravitational effects. The model is inherently adaptable for including any type of external force or moment, including dissipative effects and external loading. Three case studies are simulated on a cable-driven continuum robot structure to study the dynamic properties of the numerical model. Cross validation is performed in comparison to both experimental results and finite-element analysis.
  • Keywords
    robot dynamics; set theory; cable-driven continuum robot structure; circular arcs; computationally intensive high fidelity distributed parameter models; continuum robot dynamics; continuum robotics; cross validation; curvature variations; dynamic modeling methodology; dynamic properties; finite element analysis; finite set; kinematic variables; low fidelity lumped parameter models; numerical model; parameterized spatial curve; robot shape during operation; virtual power; Force; Friction; Load modeling; Loading; Mathematical model; Robot kinematics; Continuum robotics; cable-driven actuation; computational dynamics; principle of virtual power;
  • fLanguage
    English
  • Journal_Title
    Robotics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1552-3098
  • Type

    jour

  • DOI
    10.1109/TRO.2013.2281564
  • Filename
    6613525