Literature DB >> 28163879

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 Ancel1, Rodney Eastwood2, Daniel Vogt3, Carter Ithier3, Michael Smith3, Rob Wood3, Mirko Kovač1.   

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:  butterfly wings; computational fluid dynamics; gliding; micro-robots; wind tunnel

Year:  2017        PMID: 28163879      PMCID: PMC5206606          DOI: 10.1098/rsfs.2016.0087

Source DB:  PubMed          Journal:  Interface Focus        ISSN: 2042-8898            Impact factor:   3.906


  15 in total

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