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Optimization design and analysis of the flapping-wing robotic aircraft

Published: 20 September 2019 Publication History

Abstract

The flapping-wing robotic aircraft achieve the purpose of flight by imitating the flapping of bird wings in nature, which has wide application prospect. According to the bionics principle, this paper designs a small flapping-wing robotic aircraft with high flexibility, and it is driven by three motors. The wing flapping and empennage torsion are realized by gear transmission, four-link mechanism, balance and steering mechanism respectively; the minimum transmission angle of space four-link mechanism is adopted to optimize the target from the design requirements of small flapping-wing robotic aircraft. The optimization design of flapping-wing robotic aircraft is carried out to achieve the minimum transmission angle of four-link mechanism based on NSGA-II, which makes the movement of flapping-wing robotic aircraft more efficient and stable. Finally, the change rule of flapping motion is obtained based on the kinematics simulation of ADAMS, and the feasibility of the scheme is verified.

References

[1]
S.J. Chuang, M. Dorothy. Neurobiologically inspired control of engineered flapping flight, J. Guid. Contr. Dynam. 33 (2) (2010) 440--453.
[2]
M. Hamamoto, Y. Ohta, K. Hara, T. Hisada, A fundamental study of wing actuation for a 6-in-wingspan flapping microaerial vehicle, IEEE Trans. Robot. 26(2) (2010) 244--255.
[3]
R.J. Wood. The first takeoff of a biologically inspired at-scale robotic inspect, IEEE Trans. Robot. 24 (2) (2008) 341--347.
[4]
W. He, H. Huang, Y. Chen, W. Xie, F. Feng, Y. Kang, C. Sun, Development of an autonomous flapping-wing aerial vehicle, Sci. China Inform. Sci. 60 (6) (2017)063201.
[5]
Zahra Jahanbin, Ali Selk Ghafari, Abbas Ebrahimi. Multi-body simulation of a flapping-wing robot using an efficient dynamical model [J]. The Brazilian Society of Mechanical Sciences and Engineering, 2015 (38): 133--135.
[6]
MichaelA.A.Fenelon, TomonariFurukawa. Design of an active flapping wing mechanism and a micro aerial vehicle using a rotary actuator [J]. Mechanism and Machine Theory, 2010 (45): 137--139.
[7]
Jia Ming, Bi Shu-sheng, Zong Guang-Hua, XuYi-cun. Design of bionic flapping mechanism and its kinematic analysis [J]. Journal of Beijing University of Aeronautics and Astronautics, 2006, 32 (9): 1087--1088.
[8]
Zhu Bao -li, Ang Hai -song, Guo li. Design and Analysis of New 3D Insect-Like Flapping-Wing Mechanism [J]. Journal of Nanjing University of Aeronautics and Astronautics, 2006, 32 (9): 1087--1088.
[9]
RUAN Long-huan, HOU Yu, LI Shi-lei, TONG Chao. Design and Kinematic Analysis of A 2-DOF Bionic Flapping-Wing Flying Robot [J].
[10]
DENG Ru-ying, AI Zhi-wei, WU Yong-chao, ZOU Guang-ming. Actuator Optimization Design Research of Bird-Imitation Flapping Aero-Craft [J].
[11]
Garcia Bermudez F, Fearing R. Optical flow on a flapping wing robot[J]. Iros, 2009:5027--5032.
[12]
Jahanbin Z, Ghafari A S, Ebrahimi A, et al. Multi-body simulation of a flapping-wing robot using an efficient dynamical model[J]. Journal of the Brazilian Society of Mechanical Sciences & Engineering, 2015, 38(1):1--17.
[13]
Zhao J S, Yan Z F, Ye L. Design of planar four-bar linkage with n specified positions for a flapping wing robot[J]. Mechanism & Machine Theory, 2014, 82(24):33--55.
[14]
Chen L, Guan. Aerodynamic Modeling and Analysis of Biomimetic Flapping-Wing Robot[J]. Journal of South China University of Technology, 2011, 39(6):53--57+70.
[15]
Li K H H. Bio-inspired thorax for flapping-wing robotfly[J]. Proceedings of SPIE - The International Society for Optical Engineering, 2010, 7643(1):76431P-76431P-11.

Cited By

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  • (2023)Fault logic and data-driven model for operation reliability analysis of the flap deflection anglePhilosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences10.1098/rsta.2022.0385381:2260Online publication date: 25-Sep-2023
  • (2020)Adaptive Sliding Mode Control with Transition Process for Flapping Wing Aerial Vehicle2020 12th International Conference on Intelligent Human-Machine Systems and Cybernetics (IHMSC)10.1109/IHMSC49165.2020.10093(64-69)Online publication date: Aug-2020

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    cover image ACM Other conferences
    RICAI '19: Proceedings of the 2019 International Conference on Robotics, Intelligent Control and Artificial Intelligence
    September 2019
    803 pages
    ISBN:9781450372985
    DOI:10.1145/3366194
    Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than ACM must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected]

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    Association for Computing Machinery

    New York, NY, United States

    Publication History

    Published: 20 September 2019

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    Author Tags

    1. Kinematics
    2. Optimization design
    3. The flapping-wing robotic aircraft

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    RICAI '19 Paper Acceptance Rate 140 of 294 submissions, 48%;
    Overall Acceptance Rate 140 of 294 submissions, 48%

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    View all
    • (2023)Fault logic and data-driven model for operation reliability analysis of the flap deflection anglePhilosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences10.1098/rsta.2022.0385381:2260Online publication date: 25-Sep-2023
    • (2020)Adaptive Sliding Mode Control with Transition Process for Flapping Wing Aerial Vehicle2020 12th International Conference on Intelligent Human-Machine Systems and Cybernetics (IHMSC)10.1109/IHMSC49165.2020.10093(64-69)Online publication date: Aug-2020

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