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PMID: 29657749 Published · epublish English Journal Article

Aerodynamic efficiency of a bioinspired flapping wing rotor at low Reynolds number.

Royal Society open science ·Vol. 5 ·No. 3 ·2018-03-00 ·Pages 171307

Li H, Guo S

Abstract

This study investigates the aerodynamic efficiency of a bioinspired flapping wing rotor kinematics which combines an active vertical flapping motion and a passive horizontal rotation induced by aerodynamic thrust. The aerodynamic efficiencies for producing both vertical lift and horizontal thrust of the wing are obtained using a quasi-steady aerodynamic model and two-dimensional (2D) CFD analysis at Reynolds number of 2500. The calculated efficiency data show that both efficiencies (propulsive efficiency-ηp, and efficiency for producing lift-Pf ) of the wing are optimized at Strouhal number (St) between 0.1 and 0.5 for a range of wing pitch angles (upstroke angle of attack αu less than 45°); the St for high Pf (St = 0.1 ∼ 0.3) is generally lower than for high ηp (St = 0.2 ∼ 0.5), while the St for equilibrium rotation states lies between the two. Further systematic calculations show that the natural equilibrium of the passive rotating wing automatically converges to high-efficiency states: above 85% of maximum Pf can be obtained for a wide range of prescribed wing kinematics. This study provides insight into the aerodynamic efficiency of biological flyers in cruising flight, as well as practical applications for micro air vehicle design.

Keywords
aerodynamic efficiency bioinspiration flapping wing rotor micro air vehicle passive rotation
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Li H ORCID
Centre of Aeronautics, Aerospace, Cranfield University, Cranfield, Beds, UK.
Guo S
Centre of Aeronautics, Aerospace, Cranfield University, Cranfield, Beds, UK.
Conflict of Interest

We declare we have no competing interests.

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Article Info
Journal
Royal Society open science
Abbr.
R Soc Open Sci
ISSN
2054-5703
Published
2018-03-00
Epub
2018-00-14
Pages
171307
Language
English
Region
England
NLM ID
101647528
PMCID
PMC5882673
Databases
figshare
10.6084/m9.figshare.c.4013956
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