• DocumentCode
    1555423
  • Title

    Kinematic Condition for Maximizing the Thrust of a Robotic Fish Using a Compliant Caudal Fin

  • Author

    Park, Yong-Jai ; Jeong, Useok ; Lee, Jeongsu ; Kwon, Seok-Ryung ; Kim, Ho-Young ; Cho, Kyu-Jin

  • Author_Institution
    BioRobotics Lab., Seoul Nat. Univ., Seoul, South Korea
  • Volume
    28
  • Issue
    6
  • fYear
    2012
  • Firstpage
    1216
  • Lastpage
    1227
  • Abstract
    The compliance of a fin affects the thrust of underwater vehicles mimicking the undulatory motion of fish. Determining the optimal compliance of a fin to maximize thrust is an important issue in designing robotic fish using a compliant fin. We present a simple method to identify the condition for maximizing the thrust generated by a compliant fin propulsion system. When a fin oscillates in a sinusoidal manner, it also bends in a sinusoidal manner. We focus on a particular kinematic parameter of this motion: the phase difference between the sinusoidal motion of the driving angle and the fin-bending angle. By observing the relationship between the thrust and phase difference, we conclude that while satisfying the zero velocity condition, the maximum thrust is obtained when a compliance creates a phase difference of approximately π/2 at a certain undulation frequency. This half-pi phase delay condition is supported by thrust measurements from different compliant fins (four caudal-shaped fins with different aspect ratios) and a beam bending model of the compliant fin. This condition can be used as a guideline to select the proper compliance of a fin when designing a robotic fish.
  • Keywords
    autonomous underwater vehicles; hydrodynamics; motion control; robot kinematics; beam bending model; compliant caudal fin; compliant fin propulsion system; fin affects; fin-bending angle; half-pi phase delay condition; kinematic condition; robotic fish thrust; sinusoidal motion; underwater vehicles; undulatory fish motion; zero velocity condition; Biomimetics; Force; Kinematics; Mobile robots; Propulsion; Shape; Underwater vehicles; Compliant fin; flapping; flexible fin; flexible foil; half-pi phase delay; maximum thrust; pseudo-rigid-body model; robotic fish; underwater robot;
  • fLanguage
    English
  • Journal_Title
    Robotics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1552-3098
  • Type

    jour

  • DOI
    10.1109/TRO.2012.2205490
  • Filename
    6236205