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Vortices behavior depending on the aspect ratio of an insect-like flapping wing in hover

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Abstract

Force measurements and digital particle image velocimetry (DPIV) were carried out to reveal the effects of the aspect ratio (AR) of an insect-like flapping wing. A total of seven aspect ratios around that of an insect wing including 1.5, 2, 3, 4, 5, 6, and 8 were taken into account for the same hovering configurations. Time-course forces showed that both lift and drag in the translational phase were maximized in the case of AR = 3, which is the closest ratio to that of a living insect. The chordwise cross-sectional DPIV conclusively showed that the leading-edge vortex (LEV) on the wing of AR = 1.5 remained nearly unchanged in all cross sections. In other AR cases, however, the trailing-edge vortices (TEV) were clearly found with LEVs that lifted off the wing surfaces at the outboard cross sections. In each of these cases, the TEV interrupted the downwash, and the overall flows behind the wing became wakes similar to those found over a blunt body. The near-wake flow structures revealed that the tip vortex gradually entered the inner area from the wing tip as the AR increased. Circulations and downwash distributions showed a stretched LEV and asymmetrically developed tip and root vortices as the AR moved away from AR = 3. These results do not only indicate that the AR effects of a flapping wing are characteristics that are definitely distinctive from those of a typical aircraft, but also briefly imply that maintaining an LEV attachment by employing strong rotational accelerations is not the highest priority when attempting to achieve lift enhancements. Among the tested cases, the wing of AR = 3 had a balanced downwash flux as well as the best aerodynamic performance characteristics, including the maximum lift, reasonable efficiency, and a moderate pitching moment. This indirectly explains why the wings of living flyers adept at hovering have this AR, and it also suggests the appropriate AR for a flapping-type micro-air vehicle.

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References

  • Ansari SA, Phillips N, Stabler G, Wilkins PC, Zbikowski R, Knowles K (2009) Experimental investigation of some aspects of insect-like flapping flight aerodynamics for application to micro air vehicles. Exp Fluids 46:777–798

    Article  Google Scholar 

  • Aono H, Liang F, Liu H (2008) Near- and far-field aerodynamics in insect hovering flight: an integrated computational study. J Exp Biol 211:239–257

    Article  Google Scholar 

  • (1999) Assessment of experimental uncertainty with application to wind tunnel testing. S-071A-1999, AIAA

  • Berman G, Wang ZJ (2007) Energy minimizing kinematics in hovering insect flight. J Fluid Mech 582:153–168

    Article  MathSciNet  MATH  Google Scholar 

  • Birch JM, Dickinson MH (2001) Spanwise flow and the attachment of the leading-edge vortex on insect wings. Nature 412:729–733

    Article  Google Scholar 

  • Birch JM, Dickinson MH (2003) The influence of wing–wake interactions on the production of aerodynamic forces in flapping flight. J Exp Biol 206:2257–2272

    Article  Google Scholar 

  • 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 207:1063–1072

    Article  Google Scholar 

  • Carr ZR, Chen C, Ringuette MJ (2013) Finite-span rotating wings: three-dimensional vortex formation and variations with aspect ratio. Exp Fluids 54:1–26

    Article  Google Scholar 

  • Carr ZR, DeVoria AC, Ringuette MJ (2015) Aspect-ratio effects on rotating wings: circulation and forces. J Fluid Mech 767:497–525

    Article  Google Scholar 

  • Chirarattananon P, Ma KY, Wood RJ (2014) Adaptive control of a millimeter-scale flapping-wing robot. Bioinspir Biomim 9:025004

    Article  Google Scholar 

  • Dickinson MH, Lehmann FO, Sane SP (1999) Wing rotation and the aerodynamic basis of insect flight. Science 284:1954–1960

    Article  Google Scholar 

  • Ellington CP (1984) The aerodynamics of hovering insect flight. II. Morphological parameters. Philos Trans R Soc Lond B 305:17–40

    Article  Google Scholar 

  • Ellington CP, Van den Berg C, Willmott AP, Thomas ALR (1996) Leading-edge vortices in insect flight. Nature 384:626–630

    Article  Google Scholar 

  • Garmann DJ, Visbal MR (2014) Dynamics of revolving wings for various aspect ratios. J Fluid Mech 748:932–956

    Article  Google Scholar 

  • Garmann DJ, Visbal MR, Orkwis PD (2013) Three-dimensional flow structure and aerodynamic loading on a revolving wing. Phys Fluids 25:034101

    Article  Google Scholar 

  • Han JS, Chang JW, Kim ST (2014) Reynolds number dependency of an insect-based flapping wing. Bioinspir Biomim 9:046012

    Article  Google Scholar 

  • Han JS, Chang JW, Kim JK, Han JH (2015a) Role of trailing edge vortices on the hawkmoth-like flapping wing. J Aircraft 52:1256–1266

    Article  Google Scholar 

  • Han JS, Kim JK, Chang JW, Han JH (2015b) An improved quasi-steady aerodynamic model for insect wings that considers movement of the center of pressure. Bioinspir Biomim 10:046014

    Article  Google Scholar 

  • Harbig RR, Sheridan J, Thompson MC (2013) Reynolds number and aspect ratio effects on the leading-edge vortex for rotating insect wing planforms. J Fluid Mech 717:166–192

    Article  MATH  Google Scholar 

  • Harbig RR, Sheridan J, Thompson MC (2014) The role of advance ratio and aspect ratio in determining leading-edge vortex stability for flapping flight. J Fluid Mech 751:71–105

    Article  MathSciNet  Google Scholar 

  • Jardin T, David L (2015) Coriolis effects enhance lift on revolving wings. Phys Rev E 91:031001(R)

    Article  Google Scholar 

  • Johansson LC, Engel S, Kelber A, Heerenbrink MK, Hedenström A (2013) Multiple leading edge vortices of unexpected strength in freely flying hawkmoth. Sci Rep 3:3264

    Article  Google Scholar 

  • Keennon M, Klingebiel K, Won H, Andriukov A (2012) Development of the nano hummingbird: a tailless flapping wing micro air vehicle. AIAA paper No. AIAA 2012-0588

  • Kim D, Gharib M (2010) Experimental study of three-dimensional vortex structures in translating and rotating plates. Exp Fluids 49:329–339

    Article  Google Scholar 

  • Kruyt JW, van Heijst GF, Altshuler DL, Lentink D (2015) Power reduction and the radial limit of stall delay in revolving wings of different aspect ratio. J R Soc Interface 12:20150051

    Article  Google Scholar 

  • Kweon J, Choi H (2010) Sectional lift coefficient of a flapping in hovering motion. Phys Fluids 22:071703

    Article  Google Scholar 

  • Lehmann FO (2004) The mechanisms of lift enhancement in insect flight. Naturwissenschaften 91:101–122

    Article  Google Scholar 

  • Lentink D, Dickinson MH (2009a) Biofluiddynamic scaling of flapping, spinning and translating finds and wings. J Exp Biol 212:2691–2704

    Article  Google Scholar 

  • Lentink D, Dickinson MH (2009b) Rotational accelerations stabilize leading edge vortices on revolving fly wings. J Exp Biol 212:2705–2719

    Article  Google Scholar 

  • Liu H, Aono H (2009) Size effects on insect hovering aerodynamics: an integrated computational study. Bioinspir Biomim 4:015002

    Article  Google Scholar 

  • Liu Y, Sun M (2008) Wing kinematics measurement and aerodynamics of hovering drone flies. J Exp Biol 211:2014–2025

    Article  Google Scholar 

  • Lu Y, Shen GX, Lai GJ (2006) Dual leading-edge vortices on flapping wings. J Exp Biol 209:5005–5016

    Article  Google Scholar 

  • Lua KB, Lim TT, Yeo KS (2011) Effect of wing-wake interaction on aerodynamic force generation on a 2D flapping wing. Exp Fluids 51:177–195

    Article  Google Scholar 

  • Luo G, Sun M (2005) The effects of corrugation and wing planform on the aerodynamic force production of sweeping model insect wings. Acta Mech Sin 21:531–541

    Article  MATH  Google Scholar 

  • Ozen CA, Rockwell D (2012) Three-dimensional vortex structure on a rotating wing. J Fluid Mech 707:1–10

    Article  Google Scholar 

  • Ozen CA, Rockwell D (2013) Flow structure on a rotating wing: effect of wing aspect ratio and shape. AIAA Paper No. AIAA 2013-0676

  • Raffel M, Willert C, Wereley S, Kompenhans J (2007) Particle image velocimetry, a practical guide. Springer, Berlin

    Google Scholar 

  • Ramamurti R, Sandberg WC (2002) A three-dimensional computational study of the aerodynamic mechanisms of insect flight. J Exp Biol 205:1507–1518

    Google Scholar 

  • Sane SP (2003) Review: the aerodynamics of insect flight. J Exp Biol 206:4191–4208

    Article  Google Scholar 

  • Sane SP, Dickinson MH (2001) The control of flight force by a flapping wing: lift and drag production. J Exp Biol 204:2607–2626

    Google Scholar 

  • 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

    Google Scholar 

  • Shyy W, Aono H, Chimakurthi SK, Trizila O, Kang CK, Cesnik CES, Liu H (2010) Recent progress in flapping wing aerodynamics and aeroelasticity. Prog Aerosp Sci 46:284–327

    Article  Google Scholar 

  • Sun M (2014) Insect flight dynamics: stability and control. Rev Mod Phys 86:615–646

    Article  Google Scholar 

  • Sun M, Tang J (2002) Unsteady aerodynamic force generation by a model fruit fly wing in flapping motion. J Exp Biol 205:55–70

    Google Scholar 

  • Thielicke W, Stamhuis EJ (2014) PIVlab–towards user-friendly, affordable and accurate digital particle image velocimetry in MATLAB. J Open Res Software 2:e30

    Article  Google Scholar 

  • Usherwood JR, Ellington CP (2002) The aerodynamics of revolving wings II. Propeller force coefficients from mayfly to quail. J Exp Biol 205:1565–1576

    Google Scholar 

  • Walker JA (2002) Rotational lift: something different or more of the same? J Exp Biol 205:3783–3792

    Google Scholar 

  • 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

    Google Scholar 

  • Wojcik CJ, Buchholz JH (2014) Parameter variation and the leading-edge vortex of a rotating flat plate. AIAA J 52:348–357

    Article  Google Scholar 

  • Wolfinger M, Rockwell D (2014) Flow structure on a rotating wing: effect of radius of gyration. J Fluid Mech 755:83–110

    Article  Google Scholar 

  • Yamamoto M, Isogai K (2005) Direct measurement of unsteady fluid dynamic forces for a hovering dragonfly. AIAA J 43:2475–2480

    Article  Google Scholar 

Download references

Acknowledgments

This work was supported by a National Research Foundation of Korea (NRF) Grant funded by the Korean government (MSIP) (No. R1A2A2A01006020).

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Correspondence to Jo Won Chang.

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Han, JS., Chang, J.W. & Cho, HK. Vortices behavior depending on the aspect ratio of an insect-like flapping wing in hover. Exp Fluids 56, 181 (2015). https://doi.org/10.1007/s00348-015-2049-9

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  • DOI: https://doi.org/10.1007/s00348-015-2049-9

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