Vortex dynamics and new lift enhancement mechanism of wing-body interaction in insect forward flight

被引:90
作者
Liu, Geng [1 ]
Dong, Haibo [1 ]
Li, Chengyu [1 ]
机构
[1] Univ Virginia, Dept Mech & Aerosp Engn, Charlottesville, VA 22904 USA
基金
美国国家科学基金会;
关键词
biological fluid dynamics; swimming/flying; vortex dynamics; AERODYNAMIC FORCE GENERATION; LEADING-EDGE VORTICES; WEIS-FOGH MECHANISM; HOVERING FLIGHT; FLUID-DYNAMICS; PERFORMANCE; FLOW;
D O I
10.1017/jfm.2016.175
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The effects of wing-body interaction (WBI) on aerodynamic performance and vortex dynamics have been numerically investigated in the forward flight of cicadas. Flapping wing kinematics was reconstructed based on the output of a high-speed camera system. Following the reconstruction of cicada flight, three models, wing-body (WB), body-only (BD) and wings-only (WN), were then developed and evaluated using an immersed-boundary-method-based incompressible Navier-Stokes equations solver. Results have shown that due to WBIs, the WB model had a 18.7% increase in total lift production compared with the lift generated in both the BD and WN models, and about 65% of this enhancement was attributed to the body. This resulted from a dramatic improvement of body lift production from 2% to 11.6% of the total lift produced by the wing-body system. Further analysis of the associated near-field and far-field vortex structures has shown that this lift enhancement was attributed to the formation of two distinct vortices shed from the thorax and the posterior of the insect, respectively, and their interactions with the flapping wings. Simulations are also used to examine the new lift enhancement mechanism over a range of minimum wing-body distances, reduced frequencies and body inclination angles. This work provides a new physical insight into the understanding of the body-involved lift-enhancement mechanism in insect forward flight.
引用
收藏
页码:634 / 651
页数:18
相关论文
共 43 条
[1]   Near- and far-field aerodynamics in insect hovering flight: an integrated computational study [J].
Aono, Hikaru ;
Liang, Fuyou ;
Liu, Hao .
JOURNAL OF EXPERIMENTAL BIOLOGY, 2008, 211 (02) :239-257
[2]   INSECT AERODYNAMICS - VERTICAL SUSTAINING FORCE IN NEAR-HOVERING FLIGHT [J].
BENNETT, L .
SCIENCE, 1966, 152 (3726) :1263-&
[3]   Spanwise flow and the attachment of the leading-edge vortex on insect wings [J].
Birch, JM ;
Dickinson, MH .
NATURE, 2001, 412 (6848) :729-733
[4]   Smoke visualization of free-flying bumblebees indicates independent leading-edge vortices on each wing pair [J].
Bomphrey, Richard James ;
Taylor, Graham K. ;
Thomas, Adrian L. R. .
EXPERIMENTS IN FLUIDS, 2009, 46 (05) :811-821
[5]   The aerodynamics of Manduca sexta:: digital particle image velocimetry analysis of the leading-edge vortex [J].
Bomphrey, RJ ;
Lawson, NJ ;
Harding, NJ ;
Taylor, GK ;
Thomas, ALR .
JOURNAL OF EXPERIMENTAL BIOLOGY, 2005, 208 (06) :1079-1094
[6]   Wing rotation and the aerodynamic basis of insect flight [J].
Dickinson, MH ;
Lehmann, FO ;
Sane, SP .
SCIENCE, 1999, 284 (5422) :1954-1960
[7]  
DICKINSON MH, 1993, J EXP BIOL, V174, P45
[8]   Wake topology and hydrodynamic performance of low-aspect-ratio flapping foils [J].
Dong, H. ;
Mittal, R. ;
Najjar, F. M. .
JOURNAL OF FLUID MECHANICS, 2006, 566 :309-343
[9]   Computational modelling and analysis of the hydrodynamics of a highly deformable fish pectoral fin [J].
Dong, H. ;
Bozkurttas, M. ;
Mittal, R. ;
Madden, P. ;
Lauder, G. V. .
JOURNAL OF FLUID MECHANICS, 2010, 645 :345-373
[10]  
DONG H, 2010, P 48 AIAA AER SCI M