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Underlying principle of efficient propulsion in flexible plunging foils 被引量:1

Underlying principle of efficient propulsion in flexible plunging foils
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摘要 Passive flexibility was found to enhance propulsive efficiency in swimming animals.In this study,we numerically investigate the roles of structural resonance and hydrodynamic wake resonance in optimizing efficiency of a flexible plunging foil.The results indicates that(1)optimal efficiency is not necessarily achieved when the driving frequency matches the structural eigenfrequency;(2)optimal efficiency always occurs when the driving frequency matches the wake resonant frequency of the time averaged velocity profile.Thus,the underlying principle of efficient propulsion in flexible plunging foil is the hydrodynamic wake resonance,rather than the structural resonance.In addition,we also found that whether the efficiency can be optimized at the structural resonant point depends on the strength of the leading edge vortex relative to that of the trailing edge vortex.The result of this work provides new insights into the role of passive flexibility in flapping-based propulsion. Passive flexibility was found to enhance propulsive efficiency in swimming animals.In this study,we numerically investigate the roles of structural resonance and hydrodynamic wake resonance in optimizing efficiency of a flexible plunging foil.The results indicates that(1)optimal efficiency is not necessarily achieved when the driving frequency matches the structural eigenfrequency;(2)optimal efficiency always occurs when the driving frequency matches the wake resonant frequency of the time averaged velocity profile.Thus,the underlying principle of efficient propulsion in flexible plunging foil is the hydrodynamic wake resonance,rather than the structural resonance.In addition,we also found that whether the efficiency can be optimized at the structural resonant point depends on the strength of the leading edge vortex relative to that of the trailing edge vortex.The result of this work provides new insights into the role of passive flexibility in flapping-based propulsion.
机构地区 LNM
出处 《Acta Mechanica Sinica》 SCIE EI CAS CSCD 2014年第6期839-845,共7页 力学学报(英文版)
基金 supported by the National Natural Science Foundation of China(11232011,11021262,and 11023001) the National Basic Research Program of China(2013CB834100)
关键词 Flexibility Propulsive efficiency Structural resonance Hydrodynamic wake resonance Flexibility Propulsive efficiency Structural resonance Hydrodynamic wake resonance
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  • 1J.J. Videler, Fish Swimming, Chapman & Hall, New York, 1993.
  • 2A.K. Brodsky, The Evolution of Insect Flight, Oxford University Press, Oxford, 1994.
  • 3M.S. Triantafyllou, G.S. Triantafyllou, D.K.P. Yue, Hydrodynamics of fishlike swimming, Annu. Rev. Fluid Mech. 32 (2000) 33-53.
  • 4R.J. Wootton, Invertebrate paraxial locomotory appendages: design, deforma- tion and control, J. Exp, Biol. 202 (1999) 3333-3345.
  • 5R.J. Wootton, R.C Herbert, P.G. Young, K.E. Evans, Approaches to structural modeling of insect wings, Phil. Trans. R. Soc. Lond. B 358 (2003) 1577-1587.
  • 6S.A. Combes, T.L. Daniel, Flexural stiffness in insect wings. I. Scaling and the influence of wing venation, J. Exp. Biol. 206 (2003) 2979-2987.
  • 7S.A. Combes, T.L, Daniel, Flexural stiffness in insect wings, 11, Spatial distribution and dynamic wing bending, J. Exp. Biot, 206 (2003) 2989-2997.
  • 8F. Fish, G. Lauder, Passive and active flow control by swimming fishes and mammals. Amlu. Rev, Fluid Mech. 38 (2006) 193-224.
  • 9R.N, Hua, L. Zhu, X.Y. Lu, Locomotion of a flapping flexible plate, Phys. Fluids 25 (2013) 121901.
  • 10T.Y.T. Wu, On theoretical modeling of aquatic and aerial animal locomotion, Adv. Appl. Mech. 38 (2001) 291-353.

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