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Erschienen in: Experiments in Fluids 2/2006

01.08.2006 | Research Article

Time-resolved reconstruction of the full velocity field around a dynamically-scaled flapping wing

verfasst von: C. Poelma, W. B. Dickson, M. H. Dickinson

Erschienen in: Experiments in Fluids | Ausgabe 2/2006

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Abstract

The understanding of the physics of flapping flight has long been limited due to the obvious experimental difficulties in studying the flow field around real insects. In this study the time-dependent three-dimensional velocity field around a flapping wing was measured quantitatively for the first time. This was done using a dynamically-scaled wing moving in mineral oil in a pattern based on the kinematics obtained from real insects. The periodic flow is very reproducible, due to the relatively low Reynolds number and precise control of the wing. This repeatability was used to reconstruct the full evolving flow field around the wing from separate stereoscopic particle image velocimetry measurements for a number of spanwise planes and time steps. Typical results for two cases (an impulsive start and a simplified flapping pattern) are reported. Visualizations of the obtained data confirm the general picture of the leading-edge vortex that has been reported in recent publications, but allow a refinement of the detailed structure: rather than a single strand of vorticity, we find a stable pair of counter-rotating structures. We show that the data can also be used for quantitative studies, such as lift and drag prediction.

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Fußnoten
1
It should be noted that there are alternative definitions in the literature for the Reynolds number of a flapping wing (e.g., using the mean tip velocity, instead of the maximum). Due to the nature of the wing kinematics chosen in this study, the choice for the maximum tip velocity will become obvious.
 
2
An a posteriori analysis using the obtained out-of-plane motion made evident that the out-of-plane tracer displacement was always smaller than a quarter of the light sheet thickness for the chosen delay times.
 
3
Passive deformation refers to deformation by aerodynamic or inertial forces, i.e., not due to actual control by muscles.
 
4
The chord length is relatively constant over the span of the wing, except for the tip region, corresponding to roughly the last 10–20% of the wing. For simplicity only one value is used here.
 
5
While this value is rather arbitrary, the results did not change significantly with different threshold values.
 
Literatur
Zurück zum Zitat Adrian R (1997) Dynamic ranges of velocity and spatial resolution of particle image velocimetry. Meas Sci Technol 8:1393–1398CrossRef Adrian R (1997) Dynamic ranges of velocity and spatial resolution of particle image velocimetry. Meas Sci Technol 8:1393–1398CrossRef
Zurück zum Zitat Batchelor GK (1974) An introduction to fluid dynamics. Cambridge University Press, Cambridge Batchelor GK (1974) An introduction to fluid dynamics. Cambridge University Press, Cambridge
Zurück zum Zitat Birch JM, Dickinson MH (2001) Spanwise flow and the attachment of the leading-edge vortex on insect wings. Nature 412:729–733CrossRef Birch JM, Dickinson MH (2001) Spanwise flow and the attachment of the leading-edge vortex on insect wings. Nature 412:729–733CrossRef
Zurück zum Zitat Birch JM, Dickinson MH (2003) The influence of wing–wake interactions on the production of aerodynamic forces in flapping flight. J Exp Biol 206:2257–2272CrossRef Birch JM, Dickinson MH (2003) The influence of wing–wake interactions on the production of aerodynamic forces in flapping flight. J Exp Biol 206:2257–2272CrossRef
Zurück zum Zitat Birch JM, Dickson WB, Dickinson MH (2004) Force production and flow structure of the leading edge vortex on flapping wings at high and low Reynolds numbers. J Exp Biol 207(7):1063–1072CrossRef Birch JM, Dickson WB, Dickinson MH (2004) Force production and flow structure of the leading edge vortex on flapping wings at high and low Reynolds numbers. J Exp Biol 207(7):1063–1072CrossRef
Zurück zum Zitat Bomphrey RJ, Lawson NJ, Harding NJ, Taylor GK, Thomas ALR (2005) The aerodynamics of Manduca sexta: digital particle image velocimetry analysis of the leading-edge vortex. J Exp Biol 208:1079–1094CrossRef Bomphrey RJ, Lawson NJ, Harding NJ, Taylor GK, Thomas ALR (2005) The aerodynamics of Manduca sexta: digital particle image velocimetry analysis of the leading-edge vortex. J Exp Biol 208:1079–1094CrossRef
Zurück zum Zitat Bomphrey RJ, Taylor GK, Lawson NJ, Thomas ALR (2006a) Digital particle image velocimetry measurements of the downwash behind a desert locust Schistocerca gregaria. J R Soc Interface 3(7):311–317CrossRef Bomphrey RJ, Taylor GK, Lawson NJ, Thomas ALR (2006a) Digital particle image velocimetry measurements of the downwash behind a desert locust Schistocerca gregaria. J R Soc Interface 3(7):311–317CrossRef
Zurück zum Zitat Bomphrey RJ, Lawson NJ, Taylor GK, Thomas ALR (2006b) Application of digital particle image velocimetry to insect aerodynamics: measurement of the leading-edge vortex and wake of a Hawkmoth. Exp Fluids 40(4):546–554CrossRef Bomphrey RJ, Lawson NJ, Taylor GK, Thomas ALR (2006b) Application of digital particle image velocimetry to insect aerodynamics: measurement of the leading-edge vortex and wake of a Hawkmoth. Exp Fluids 40(4):546–554CrossRef
Zurück zum Zitat Combes SA, Daniel TL (2003) Flexural stiffness in insect wings. II. spatial distribution and dynamic wing bending. J Exp Biol 206:2989–2997CrossRef Combes SA, Daniel TL (2003) Flexural stiffness in insect wings. II. spatial distribution and dynamic wing bending. J Exp Biol 206:2989–2997CrossRef
Zurück zum Zitat Dabiri JO (2005) On the estimation of swimming and flying forces from wake measurements. J Exp Biol 208:3519–3532CrossRef Dabiri JO (2005) On the estimation of swimming and flying forces from wake measurements. J Exp Biol 208:3519–3532CrossRef
Zurück zum Zitat Dickinson MH, Lehmann F-O, Sane SP (1999) Wing rotation and the aerodynamic basis of insect flight. Science 284(5422):1954–1960CrossRef Dickinson MH, Lehmann F-O, Sane SP (1999) Wing rotation and the aerodynamic basis of insect flight. Science 284(5422):1954–1960CrossRef
Zurück zum Zitat van Doorne CWH, Westerweel J, Nieuwstadt FTM (2004) Measurement uncertainty of stereoscopiv-piv for flow with large out-of-plane motion. In: Proceedings of the EUROPIV 2 workshop held in Zaragoza, Spain, March 31–April 1, 2003, pp 213–227 van Doorne CWH, Westerweel J, Nieuwstadt FTM (2004) Measurement uncertainty of stereoscopiv-piv for flow with large out-of-plane motion. In: Proceedings of the EUROPIV 2 workshop held in Zaragoza, Spain, March 31–April 1, 2003, pp 213–227
Zurück zum Zitat Ellington CP, Van den Berg C, Willmott AP, Thomas ALR (1996) Leading-edge vortices in insect flight. Nature 384:626–630CrossRef Ellington CP, Van den Berg C, Willmott AP, Thomas ALR (1996) Leading-edge vortices in insect flight. Nature 384:626–630CrossRef
Zurück zum Zitat Fry SN, Sayaman R, Dickinson MH (2003) The aerodynamics of free-flight maneuvers in Drosophila. Science 300(5618):495–498CrossRef Fry SN, Sayaman R, Dickinson MH (2003) The aerodynamics of free-flight maneuvers in Drosophila. Science 300(5618):495–498CrossRef
Zurück zum Zitat Fry SN, Sayaman R, Dickinson MH (2005) The aerodynamics of hovering flight in Drosophila. J Exp Biol 208(12):2303–2318CrossRef Fry SN, Sayaman R, Dickinson MH (2005) The aerodynamics of hovering flight in Drosophila. J Exp Biol 208(12):2303–2318CrossRef
Zurück zum Zitat Hedenström A, Rosén M, Spedding GR (2006) Vortex wakes generated by robins erithacus rubecula during free flight in a wind tunnel. J R Soc Interface 3(7):263–276CrossRef Hedenström A, Rosén M, Spedding GR (2006) Vortex wakes generated by robins erithacus rubecula during free flight in a wind tunnel. J R Soc Interface 3(7):263–276CrossRef
Zurück zum Zitat Keane RD, Adrian RJ (1992) Theory of cross-correlation analysis of PIV analysis. Appl Sci Res 49:191–215CrossRef Keane RD, Adrian RJ (1992) Theory of cross-correlation analysis of PIV analysis. Appl Sci Res 49:191–215CrossRef
Zurück zum Zitat Meinhart CD, Wereley ST, Santiago JG (2000) A PIV algorithm for estimating time-averaged velocity fields. J Fluids Eng 122:285–289CrossRef Meinhart CD, Wereley ST, Santiago JG (2000) A PIV algorithm for estimating time-averaged velocity fields. J Fluids Eng 122:285–289CrossRef
Zurück zum Zitat Milano M, Gharib M (2005) Uncovering the physics of flapping flat plates with artificial evolution. J Fluid Mech 534:403–409CrossRefMATH Milano M, Gharib M (2005) Uncovering the physics of flapping flat plates with artificial evolution. J Fluid Mech 534:403–409CrossRefMATH
Zurück zum Zitat Minotti FO, Speranza E (2005) Leading-edge vortex stability in insect wings. Phys Rev E 71:051908CrossRef Minotti FO, Speranza E (2005) Leading-edge vortex stability in insect wings. Phys Rev E 71:051908CrossRef
Zurück zum Zitat Noca F, Shiels D, Jeon D (1999) A comparison of methods for evaluating time-dependent fluid dynamic forces on bodies, using only velocity fields and their derivatives. J Fluids Struct 13(5):551–578CrossRef Noca F, Shiels D, Jeon D (1999) A comparison of methods for evaluating time-dependent fluid dynamic forces on bodies, using only velocity fields and their derivatives. J Fluids Struct 13(5):551–578CrossRef
Zurück zum Zitat Rayner JMV (1979) A vortex theory of animal flight .1. Vortex wake of a hovering animal. J Fluids Mech 91:697–730CrossRefMATH Rayner JMV (1979) A vortex theory of animal flight .1. Vortex wake of a hovering animal. J Fluids Mech 91:697–730CrossRefMATH
Zurück zum Zitat Sane SP, Dickinson MH (2002) The aerodynamic effects of wing rotation and a revised quasi-steady model of flapping flight. J Exp Biol 205:1087–1096 Sane SP, Dickinson MH (2002) The aerodynamic effects of wing rotation and a revised quasi-steady model of flapping flight. J Exp Biol 205:1087–1096
Zurück zum Zitat Spedding GR, Rayner JMV, Pennycuick CJ (1984) Momentum and energy in the wake of a pigeon (Columba livia) in slow flight. J Exp Biol 111:81–102 Spedding GR, Rayner JMV, Pennycuick CJ (1984) Momentum and energy in the wake of a pigeon (Columba livia) in slow flight. J Exp Biol 111:81–102
Zurück zum Zitat Spedding GR, Rosén M, Hedenström A (2003) A family of vortex wakes generated by a thrush nightingale in free flight in a wind tunnel over its entire natural range of flight speeds. J Exp Biol 206:2313–2344CrossRef Spedding GR, Rosén M, Hedenström A (2003) A family of vortex wakes generated by a thrush nightingale in free flight in a wind tunnel over its entire natural range of flight speeds. J Exp Biol 206:2313–2344CrossRef
Zurück zum Zitat Stanislas M, Okamoto K, Kähler CJ, Westerweel J (2005) Main results of the second international PIV challenge. Exp Fluids 39:170–191CrossRef Stanislas M, Okamoto K, Kähler CJ, Westerweel J (2005) Main results of the second international PIV challenge. Exp Fluids 39:170–191CrossRef
Zurück zum Zitat Taylor GK, Nudds RL, Thomas ALR (2003) Flying and swimming animals cruise at a strouhal number tuned for high power efficiency. Nature 425:707–711CrossRef Taylor GK, Nudds RL, Thomas ALR (2003) Flying and swimming animals cruise at a strouhal number tuned for high power efficiency. Nature 425:707–711CrossRef
Zurück zum Zitat Usherwood JR, Ellington CP (2002) The aerodynamics of revolving wings—I. model hawkmoth wings. J Exp Biol 205(11):1547–1564 Usherwood JR, Ellington CP (2002) The aerodynamics of revolving wings—I. model hawkmoth wings. J Exp Biol 205(11):1547–1564
Zurück zum Zitat Von Ellenrieder KD, Parker K, Soria J (2003) Flow structures behind a heaving and pitching finite-span wing. J Fluid Mech 490:129–138CrossRefMATH Von Ellenrieder KD, Parker K, Soria J (2003) Flow structures behind a heaving and pitching finite-span wing. J Fluid Mech 490:129–138CrossRefMATH
Zurück zum Zitat Wang ZJ (2000) Two dimensional mechanism for insect hovering. Phys Rev Lett 85(10):2216–2219CrossRef Wang ZJ (2000) Two dimensional mechanism for insect hovering. Phys Rev Lett 85(10):2216–2219CrossRef
Zurück zum Zitat Wang ZJ (2005) Dissecting insect flight. Annu Rev Fluid Mech 37:183–210CrossRef Wang ZJ (2005) Dissecting insect flight. Annu Rev Fluid Mech 37:183–210CrossRef
Zurück zum Zitat Westerweel J (1994) Efficient detection of spurious vectors in particle image velocimetry data. Exp Fluids 16:236–247CrossRef Westerweel J (1994) Efficient detection of spurious vectors in particle image velocimetry data. Exp Fluids 16:236–247CrossRef
Zurück zum Zitat Wieneke B (2005) Stereo-PIV using self-calibration on particle images. Exp Fluids 39:267–280CrossRef Wieneke B (2005) Stereo-PIV using self-calibration on particle images. Exp Fluids 39:267–280CrossRef
Zurück zum Zitat Willert CE (1997) Stereoscopic digital particle image velocimetry for application in wind tunnel flows. Meas Sci Technol 8:1465–1479CrossRef Willert CE (1997) Stereoscopic digital particle image velocimetry for application in wind tunnel flows. Meas Sci Technol 8:1465–1479CrossRef
Zurück zum Zitat Willmott AP, Ellington CP (1997) The mechanics of flight in the hawkmoth Manduca sexta. I. kinematics of hovering and forward flight. J Exp Biol 200:2705–2722 Willmott AP, Ellington CP (1997) The mechanics of flight in the hawkmoth Manduca sexta. I. kinematics of hovering and forward flight. J Exp Biol 200:2705–2722
Zurück zum Zitat Wu JC (1981) Theory for aerodynamic florce and moment in viscous flows. AIAA J 19(4):432–441CrossRefMATH Wu JC (1981) Theory for aerodynamic florce and moment in viscous flows. AIAA J 19(4):432–441CrossRefMATH
Metadaten
Titel
Time-resolved reconstruction of the full velocity field around a dynamically-scaled flapping wing
verfasst von
C. Poelma
W. B. Dickson
M. H. Dickinson
Publikationsdatum
01.08.2006
Verlag
Springer-Verlag
Erschienen in
Experiments in Fluids / Ausgabe 2/2006
Print ISSN: 0723-4864
Elektronische ISSN: 1432-1114
DOI
https://doi.org/10.1007/s00348-006-0172-3

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