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Unsteady aerodynamic forces and power requirements of a bumblebee in forward flight 被引量:4

Unsteady aerodynamic forces and power requirements of a bumblebee in forward flight
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摘要 Aerodynamic forces and power requirements in forward flight in a bumblebee (Bombus terrestris) were studied using the method of computational fluid dynamics. Actual wing kinematic data of free flight were used in the study (the speed ranges from 0 m/s to 4.5 m/s; advance ratio ranges from 0-0.66). The bumblebee employs the delayed stall mechanism and the fast pitching-up rotation mechanism to produce vertical force and thrust. The leading-edge vortex does not shed in the translatory phase of the half-strokes and is much more concentrated than that of the fruit fly in a previous study. At hovering and low-speed flight, the vertical force is produced by both the half-strokes and is contributed by wing lift; at medium and high speeds, the vertical force is mainly produced during the downstroke and is contributed by both wing lift and wing drag. At all speeds the thrust is mainly produced in the upstroke and is contributed by wing drag. The power requirement at low to medium speeds is not very different from that of hovering and is relatively large at the highest speed (advance ratio 0.66), i.e. the power curve is Jshaped. Except at the highest flight speed, storing energy elastically can save power up to 20%-30%. At the highest speed, because of the large increase of aerodynamic torque and the slight decrease of inertial torque (due to the smaller stroke amplitude and stroke frequency used), the power requirement is dominated by aerodynamic power and the effect of elastic storage of energy on power requirement is limited. Aerodynamic forces and power requirements in forward flight in a bumblebee (Bombus terrestris) were studied using the method of computational fluid dynamics. Actual wing kinematic data of free flight were used in the study (the speed ranges from 0 m/s to 4.5 m/s; advance ratio ranges from 0-0.66). The bumblebee employs the delayed stall mechanism and the fast pitching-up rotation mechanism to produce vertical force and thrust. The leading-edge vortex does not shed in the translatory phase of the half-strokes and is much more concentrated than that of the fruit fly in a previous study. At hovering and low-speed flight, the vertical force is produced by both the half-strokes and is contributed by wing lift; at medium and high speeds, the vertical force is mainly produced during the downstroke and is contributed by both wing lift and wing drag. At all speeds the thrust is mainly produced in the upstroke and is contributed by wing drag. The power requirement at low to medium speeds is not very different from that of hovering and is relatively large at the highest speed (advance ratio 0.66), i.e. the power curve is Jshaped. Except at the highest flight speed, storing energy elastically can save power up to 20%-30%. At the highest speed, because of the large increase of aerodynamic torque and the slight decrease of inertial torque (due to the smaller stroke amplitude and stroke frequency used), the power requirement is dominated by aerodynamic power and the effect of elastic storage of energy on power requirement is limited.
出处 《Acta Mechanica Sinica》 SCIE EI CAS CSCD 2005年第3期207-217,共11页 力学学报(英文版)
基金 The project supported by the National Natural Science Foundation of China(10232010) the National Aeronautic Science fund of China(03A51049)
关键词 INSECT Forward flight Unsteady aerodynamics POWER Numerical flow simulation Insect Forward flight Unsteady aerodynamics Power Numerical flow simulation
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  • 1Patar Ebenezer Sitorus,Hoon Cheol Park,Doyoung Byun,Nam Seo Goo,Cheol Heui Han.The Role of Elytra in Beetle Flight: Ⅰ.Generation of Quasi-Static Aerodynamic Forces[J].Journal of Bionic Engineering,2010,7(4):354-363. 被引量:5
  • 2Guoyu Luo Mao Sun.The effects of corrugation and wing planform on the aerodynamic force production of sweeping model insect wings[J].Acta Mechanica Sinica,2005,21(6):531-541. 被引量:13
  • 3Willmott A P,,Ellington C P,Thomas A R.Flow visualization and unsteady aerodynamics in the flight of the hawkmoth,manduca sexta[].Philosophical Transactions of the Royal Society of London.1997 被引量:1
  • 4Usherwood J R,Ellington C P.The aerodynamics of revolving wings.Ⅱ.Propeller force coefficients from mayfly to quail[].Journal of Experimental Biology.2002 被引量:1
  • 5Ellington C P.The aerodynamics of hovering insect flight.Ⅲ.Kinematics[].Philosophical Transactions of the Royal Society of London.1984 被引量:1
  • 6Ellington C P.The aerodynamics of hovering insect flight.IV.Aerodynamic mechanisms[].Philosophical Transactions of the Royal Society of London.1984 被引量:1
  • 7Ellington C P.The aerodynamics of hovering insect flight.Ⅵ.Lift and power requirements[].Philosophical Transactions of the Royal Society of London.1984 被引量:1
  • 8Dudley R.The mechanics of forward flight in insects[]..1987 被引量:1
  • 9Wang H,Zeng L J,Yin C Y.Measuring the body position,attitude and wing deformation of a free-flight dragonfly by combining a comb fringe pattern with sign points on the wing[].Measurement Science and Technology.2002 被引量:1
  • 10Ennos A R,Wootton R J.Functional wing morphology and aerodynamics of panorpa germanica (insecta:mecopter)[].Journal of Experimental Biology.1989 被引量:1

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