This paper describes the concept of a four-bar linkage mechanism for flapping wing micro air vehicles and outlines its design, implementation, and testing. Micro air vehicles (MAVs) are defined as flying vehicles ca. 150 mm in size (handheld), weighing 50–100 g, and are developed to reconnoiter in confined spaces (inside buildings, tunnels, etc.). For this application, insectlike flapping wings are an attractive solution and, hence, the need to realize the functionality of insect flight by engineering means. Insects fly by oscillating (plunging) and rotating (pitching) their wings through large angles, while sweeping them forward and backward. During this motion, the wing tip approximately traces a figure eight and the wing changes the angle of attack (pitching) significantly. The aim of the work described here was to design and build an insectlike flapping mechanism on a 150 mm scale. The main purpose was not only to construct a test bed for aeromechanical research on hover in this mode of flight, but also to provide a precursor design for a future flapping-wing MAV. The mechanical realization was to be based on a four-bar linkage combined with a spatial articulation. Two instances of idealized figure eights were considered: (i) Bernoulli’s lemniscate and (ii) Watt’s sextic. The former was found theoretically attractive, but impractical, while the latter was both theoretically and practically feasible. This led to a combination of Watt’s straight-line mechanism with a drive train utilizing a Geneva wheel and a spatial articulation. The actual design, implementation, and testing of this concept are briefly described at the end of the paper.
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July 2005
Technical Papers
Four-Bar Linkage Mechanism for Insectlike Flapping Wings in Hover: Concept and an Outline of Its Realization
Rafał Z˙bikowski,
Rafał Z˙bikowski
Department of Aerospace, Power, and Sensors, Cranfield University (RMCS Shrivenham), Swindon SN6 8LA, England
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Cezary Galin´ski,
Cezary Galin´ski
OBRUM, Ul. Toszecka 102, 44-101 Gliwice, Poland
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Christopher B. Pedersen
Christopher B. Pedersen
Department of Aerospace, Power, and Sensors, Cranfield University (RMCS Shrivenham), Swindon SN6 8LA, England
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Rafał Z˙bikowski
Department of Aerospace, Power, and Sensors, Cranfield University (RMCS Shrivenham), Swindon SN6 8LA, England
Cezary Galin´ski
OBRUM, Ul. Toszecka 102, 44-101 Gliwice, Poland
Christopher B. Pedersen
Department of Aerospace, Power, and Sensors, Cranfield University (RMCS Shrivenham), Swindon SN6 8LA, England
Contributed by the Mechanisms and Robotics Committee for publication in the JOURNAL OF MECHANICAL DESIGN. Manuscript received September 8, 2003; revised May 26, 2004. Associate Editor: G. R. Pennock.
J. Mech. Des. Jul 2005, 127(4): 817-824 (8 pages)
Published Online: June 27, 2005
Article history
Received:
September 8, 2003
Revised:
May 26, 2004
Online:
June 27, 2005
Citation
Z˙bikowski, R., Galin´ski, C., and Pedersen, C. B. (June 27, 2005). "Four-Bar Linkage Mechanism for Insectlike Flapping Wings in Hover: Concept and an Outline of Its Realization ." ASME. J. Mech. Des. July 2005; 127(4): 817–824. https://doi.org/10.1115/1.1829091
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