Validated Unsteady Computational Fluid Dynamic Analysis of an Oscillating Bio-Inspired Airfoil

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An unsteady, two-dimensional numerical study was conducted to investigate the aerodynamic and flow characteristics of a bio-inspired corrugated airfoil oscillating at 2Hz with an amplitude of 10°. The upstream flow was set such that the chord Re = 14,000. The computational results were validated against experimental results from a 2D particle image velocimetry (PIV) experiment on the same airfoil geometry. Complex flow structures such as the formation and shedding of trailing edge vortices have been revealed to have significant impacts on the lift and drag characteristics of the airfoil in oscillating motion. The shed vortices provide a low pressure region on the top surface of the airfoil throughout the period of oscillation, thus increasing lift of the airfoil. In particular, vortices formed and shed from the rear-most corrugation appear to have the largest effect. The pitch-down motion produces a lower absolute peak lift as compared the pitch-up motion which may be explained by the disruption of the high pressure zone on the top surface of the airfoil by a vortex forming in the corrugations. This results in a relatively lower high pressure region on the advancing side as compared to the pitch-up motion. In addition to the lift calculations, drag calculations indicate that net thrust is being produced during the oscillations and more thrust is produced on the pitch-up than the pitch-down motion.

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698-706

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October 2015

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© 2015 Trans Tech Publications Ltd. All Rights Reserved

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[1] Y X Chan, G C Koh, M C Hoang, S Shi, and TH New, Effects of Corrugate Aerofoil Surface Features on Flow-Separation Control, AIAA Journal, vol. 52, no. 1, pp.206-211, (2014).

DOI: 10.2514/1.j052398

Google Scholar

[2] F R Menter, Best Practice: Scale-Resolving Simulations in ANSYS CFD Version 1. 02. Gemany: ANSYS, 2012, vol. 32.

Google Scholar

[3] F R Menter and Y Egorov, Scale-Adaptive Simulation Method for Unsteady Flow Predictions Part 1: Theory and Model Description, Flow, Turnulence and Combustion, vol. 85, no. 1, pp.113-138, (2010).

DOI: 10.1007/s10494-010-9264-5

Google Scholar

[4] Jiri Vondal and Jiri Hajek, Comparison of SAS turbulence model to the SST K-w in non-premixed combustion simulation, in 14th European Turbulence Conference, Lyon, (2013).

Google Scholar

[5] T H New, Y X Chan, G C Koh, H M Chung, and S Shi, Effects of Corrugate Aerofoil Surface Features on Flow-Separation Control, AIAA Journal, vol. 52, no. 1, pp.206-211, (2014).

DOI: 10.2514/1.j052398

Google Scholar

[6] J C Nawroth et al., A tissue-engineered jellyfish with biomimetic propulsion, Nature Biotechnology, no. 30, pp.792-797, (2012).

Google Scholar

[7] D E Alexander, Unusual Phase Relationships Between The Forewings and Hindwings in Flying Dragonflies, Journal of Experimental Biology, vol. 109, pp.379-383, (1984).

DOI: 10.1242/jeb.109.1.379

Google Scholar

[8] C Hefler, H Qiu, and W Shyy, The Interaction of Wings in Different Flight Modes of a Dragonfly, in 17th International Symposium on Applications of Laser Techniques to Fluid Mechanics, Lisbon, (2014).

Google Scholar

[9] A B Kesel, Aerodynamic Characteristics of Dragonfly Wing Sections compared with Technical Aerofoils, Journal of Experimental Biology, no. 203, pp.3125-3135, (2000).

DOI: 10.1242/jeb.203.20.3125

Google Scholar

[10] B G Newman, S B Savage, and D Schouella, Model test on a wing section of an Aeschna dragonfly, in Scale Effects in Animal Locomotion.: Cambridge University, 1977, pp.445-477.

Google Scholar

[11] R A Norberg, Hovering Flight of the Dragonfly Aeschna juncea L. Kinematics and Aerodynamics., in Swimming and Flying in Nature.: 763-781, (1975).

DOI: 10.1007/978-1-4757-1326-8_19

Google Scholar

[12] C J C Rees, Form and Function in Corrugated Insect Wings, Nature, vol. 256, pp.200-203, (1975).

DOI: 10.1038/256200a0

Google Scholar

[13] G Ruppell, Kinematic Analysis of Symmetrical Flight Manoeuvres of Odonata, Journal of Experimental Biology, vol. 144, pp.13-42, (1989).

DOI: 10.1242/jeb.144.1.13

Google Scholar

[14] A L R Thomas, G K Taylor, R B Srygley, R L Nudds, and R J Bomphrey, Dragonfly Flight: Free-Flight and Tethered Flow Visualizations Reveal a Diverse Array of Unsteady Lift-Generating Mechanisms, Controlled Primarily via Angle of Attack, Journal of Experimental Biology, vol. 207, pp.4299-4323, (2004).

DOI: 10.1242/jeb.01262

Google Scholar

[15] J M Wakeling and C P Ellington, Dragonfly Flight I Gliding Flight and Steady-State Aerodynamics, Journal of Experimental Biology, vol. 200, pp.543-556, (1997).

DOI: 10.1242/jeb.200.3.543

Google Scholar

[16] J M Wakeling and C P Ellington, Dragonfly Flight III Lift and Power Requirements, Journal of Experimental Biology, vol. 200, pp.583-600, (1997).

DOI: 10.1242/jeb.200.3.583

Google Scholar

[17] Z J Wang, Dragonfly Flight, Physics Today, vol. 61, no. 10, pp.74-75, (2008).

Google Scholar

[18] D-E Levy and A Seifert, Simplified dragonfly airfoil aerodynamics at Reynolds numbers below 8000, Physics of Fluids, vol. 21, (2009).

DOI: 10.1063/1.3166867

Google Scholar

[19] Z Zhou, C Li, J B Nie, and Y Chen, Effect of oscillation frequency on wind turbine airfoil dynamic stall, Materials Science and Engineering, vol. 52, pp.1-5, (2013).

DOI: 10.1088/1757-899x/52/5/052012

Google Scholar

[20] K Lu, Y H Xie, D Zhang, and J B Lan, Numerical investigations into the asymmetric effects on the aerodynamic response of a pitching airfoil, Journal of Fluids and Sturctures, no. 76-86, p.39, (2013).

DOI: 10.1016/j.jfluidstructs.2013.02.001

Google Scholar

[21] J Panda and K B M Q Zaman, Experimental Investigation of the flowfield of an oscillating airfoil, in 10th AIAA Applied Aerodynamics Conference, (1992).

DOI: 10.2514/6.1992-2622

Google Scholar

[22] T Lee, Flow past two in-tandem airfoils undergoing sinusoidal oscillations, Experiments in Fluids, vol. 51, no. 6, pp.1605-1621, (2011).

DOI: 10.1007/s00348-011-1173-4

Google Scholar

[23] Hui Hu and Masatoshi Tamai, Bioinspired corrugated airfoil at low Reynolds numbers, Journal of Aircraft, vol. 45, no. 6, pp.2068-2077, (2008).

DOI: 10.2514/1.37173

Google Scholar

[24] Michelle Kwok and Rajat Mittal, Experimental Investigation of the Aerodyanmics of a Modeled Dragonfly Wing Section, in AIAA region I-MA Student Conference Charlottesville, Virginia, (2005).

Google Scholar

[25] Jeffrey Murphy and Hui Hu, An Experimental Investigation on a Bio-inspired Corrugated Airfoil, in 47th AIAA Aerospace Sciences Meeting and Exhibit, Orlando, 2009. x.

DOI: 10.2514/6.2009-1087

Google Scholar