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Kinematic condition for maximizing the thrust of a Robotic Fish using a compliant caudal fin

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

Research output: Contribution to journalArticlepeer-review

107 Citations (Scopus)

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.

Original languageEnglish
Article number6236205
Pages (from-to)1216-1227
Number of pages12
JournalIEEE Transactions on Robotics
Volume28
Issue number6
DOIs
Publication statusPublished - 2012

Keywords

  • Compliant fin
  • flapping
  • flexible fin
  • flexible foil
  • half-pi phase delay
  • maximum thrust
  • pseudo-rigid-body model
  • robotic fish
  • underwater robot

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