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Aerodynamic evaluation of wing shape and wing orientation in four butterfly species using numerical simulations and a low-speed wind tunnel, and its implications for the design of flying micro-robots

Alejandro Ortega Ancel, Rodney Eastwood, Daniel M. Vogt, Carter Ithier, Michael J. Smith, Rob Wood, Mirko Kovač

Year
2016
Citations
51
Access
Open access

Abstract

Many insects are well adapted to long-distance migration despite the larger energetic costs of flight for small body sizes. To optimize wing design for next-generation flying micro-robots, we analyse butterfly wing shapes and wing orientations at full scale using numerical simulations and in a low-speed wind tunnel at 2, 3.5 and 5 m s −1 . The results indicate that wing orientations which maximize wing span lead to the highest glide performance, with lift to drag ratios up to 6.28, while spreading the fore-wings forward can increase the maximum lift produced and thus improve versatility. We discuss the implications for flying micro-robots and how the results assist in understanding the behaviour of the butterfly species tested.

Keywords

WingAerodynamicsButterflyWind tunnelComputer scienceOrientation (vector space)RobotSimulationAerospace engineeringMarine engineering

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