Journal of The Institution of Engineers (India): Series C | 2019

Performance Analysis of a Self-Propelling Flat Plate Fin with Joint Compliance

 
 
 
 

Abstract


Fish fin muscles are compliant and they regulate the stiffness to suit different swimming conditions. This article attempts to understand the significance of presence of compliance in fin muscle with help of a flexible joint flat plate fin model. Blade element method is employed to model hydrodynamics and to compute the forces of interaction during motion of the plate within fluid. The dynamic model of self-propelling fin is developed through multi-body dynamics approach considering the hydrodynamic forces as external forces acting on the fin. The derived hydrodynamic model is validated with experiments on rigid flat plate fin. The effect of the joint stiffness and flapping frequency on the propulsion speed and efficiency is investigated through simulations using the derived and validated model. The propulsion efficiency is found to be highly influenced by the joint stiffness at a given flapping frequency. The fin attained maximum propulsion efficiency when the joint stiffness is tuned to a value at which flapping frequency matches near natural frequency of the fin. At this tuned joint stiffness and flapping frequency, the resulted Strouhal numbers are observed to fall within the optimum range (0.2\xa0to\xa00.4) for maximized propulsion efficiency of flying birds and swimming aquatic animals reported in literature.

Volume 100
Pages 153-163
DOI 10.1007/S40032-017-0417-3
Language English
Journal Journal of The Institution of Engineers (India): Series C

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