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R Soc Open Sci. 2016 Dec 07;3(12):160746. doi: 10.1098/rsos.160746. eCollection 2016 Dec.

Clap-and-fling mechanism in a hovering insect-like two-winged flapping-wing micro air vehicle.

Royal Society open science

Hoang Vu Phan, Thi Kim Loan Au, Hoon Cheol Park

Affiliations

  1. Artificial Muscle Research Center, Konkuk University, Seoul 143-701, South Korea; Department of Advanced Technology Fusion, Konkuk University, Seoul 143-701, South Korea.

PMID: 28083112 PMCID: PMC5210694 DOI: 10.1098/rsos.160746

Abstract

This study used numerical and experimental approaches to investigate the role played by the clap-and-fling mechanism in enhancing force generation in hovering insect-like two-winged flapping-wing micro air vehicle (FW-MAV). The flapping mechanism was designed to symmetrically flap wings at a high flapping amplitude of approximately 192°. The clap-and-fling mechanisms were thereby implemented at both dorsal and ventral stroke reversals. A computational fluid dynamic (CFD) model was constructed based on three-dimensional wing kinematics to estimate the force generation, which was validated by the measured forces using a 6-axis load cell. The computed forces proved that the CFD model provided reasonable estimation with differences less than 8%, when compared with the measured forces. The measurement indicated that the clap and flings at both the stroke reversals augmented the average vertical force by 16.2% when compared with the force without the clap-and-fling effect. In the CFD simulation, the clap and flings enhanced the vertical force by 11.5% and horizontal drag force by 18.4%. The observations indicated that both the fling and the clap contributed to the augmented vertical force by 62.6% and 37.4%, respectively, and to the augmented horizontal drag force by 71.7% and 28.3%, respectively. The flow structures suggested that a strong downwash was expelled from the opening gap between the trailing edges during the fling as well as the clap at each stroke reversal. In addition to the fling phases, the influx of air into the low-pressure region between the wings from the leading edges also significantly contributed to augmentation of the vertical force. The study conducted for high Reynolds numbers also confirmed that the effect of the clap and fling was insignificant when the minimum distance between the two wings exceeded 1.2c (c = wing chord). Thus, the clap and flings were successfully implemented in the FW-MAV, and there was a significant improvement in the vertical force.

Keywords: biomimetics; clap and fling; insect flight; rhinoceros beetle; two-winged flapping-wing micro air vehicle

References

  1. PLoS One. 2013;8(1):e53060 - PubMed
  2. Proc Biol Sci. 2013 Mar 27;280(1759):20130531 - PubMed
  3. J Exp Biol. 2003 Dec;206(Pt 23):4191-208 - PubMed
  4. Science. 1999 Jun 18;284(5422):1954-60 - PubMed
  5. J Exp Biol. 2014 Nov 1;217(Pt 21):3898-909 - PubMed
  6. Bioinspir Biomim. 2008 Sep;3(3):034001 - PubMed
  7. J Exp Biol. 2009 Oct 1;212(19):3076-90 - PubMed
  8. Naturwissenschaften. 2004 Mar;91(3):101-22 - PubMed
  9. J Exp Biol. 2005 Aug;208(Pt 16):3075-92 - PubMed
  10. J R Soc Interface. 2005 Jun 22;2(3):223-35 - PubMed
  11. Science. 2013 May 3;340(6132):603-7 - PubMed
  12. R Soc Open Sci. 2016 Dec 7;3(12):160746 - PubMed
  13. Bioinspir Biomim. 2012 Jun;7(2):025003 - PubMed
  14. Bioinspir Biomim. 2009 Mar;4(1):015002 - PubMed
  15. Bioinspir Biomim. 2011 Sep;6(3):036008 - PubMed
  16. J Exp Biol. 2005 Jan;208(Pt 2):195-212 - PubMed
  17. J Exp Biol. 1999 Dec;202(Pt 23):3439-48 - PubMed
  18. Nature. 2002 Dec 12;420(6916):660-4 - PubMed
  19. Sci Am. 1975 Nov;233(5):81-7 - PubMed
  20. J R Soc Interface. 2014 Aug 6;11(97):20140281 - PubMed
  21. J Exp Biol. 2010 Jul 1;213(Pt 13):2273-83 - PubMed
  22. Science. 2009 Sep 18;325(5947):1549-52 - PubMed
  23. J R Soc Interface. 2013 Jun 05;10(85):20130312 - PubMed

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