Journal of Bionic Engineering ›› 2022, Vol. 19 ›› Issue (2): 343-354.doi: 10.1007/s42235-021-00137-1

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Design and Aerodynamic Analysis of Dragonfly-like Flapping Wing Micro Air Vehicle

Yanjuan Hu1, Weiwei Ru1, Qiang Liu2, Zhanli Wang1   

  1. 1 School of Mechatronic Engineering, Changchun University of Technology, Changchun 130012, China  2 School of Mechanical and Aerospace Engineering, Jilin University, Changchun 130022, China
  • 收稿日期:2021-09-14 修回日期:2021-11-30 接受日期:2021-12-03 出版日期:2022-03-10 发布日期:2022-05-02
  • 通讯作者: Qiang Liu E-mail:liuqiang2012@jlu.edu.cn
  • 作者简介:Yanjuan Hu1, Weiwei Ru1, Qiang Liu2, Zhanli Wang1

Design and Aerodynamic Analysis of Dragonfly-like Flapping Wing Micro Air Vehicle

Yanjuan Hu1, Weiwei Ru1, Qiang Liu2, Zhanli Wang1   

  1. 1 School of Mechatronic Engineering, Changchun University of Technology, Changchun 130012, China  2 School of Mechanical and Aerospace Engineering, Jilin University, Changchun 130022, China
  • Received:2021-09-14 Revised:2021-11-30 Accepted:2021-12-03 Online:2022-03-10 Published:2022-05-02
  • Contact: Qiang Liu E-mail:liuqiang2012@jlu.edu.cn
  • About author:Yanjuan Hu1, Weiwei Ru1, Qiang Liu2, Zhanli Wang1

摘要: Dragonflies have naturally high flying ability and flight maneuverability, making them more adaptable to harsh ecological environments. In this paper, a flapping wing bionic air vehicle with three-degrees-of-freedom is designed and manufactured by simulating the flight mode of dragonfly. Firstly, the body structure of dragonfly was analyzed, and then the design scheme of flapping wing micro air vehicle was proposed based on the flight motion characteristics and musculoskeletal system of dragonfly. By optimizing the configuration and using Adams to do kinematic simulation, it is shown that the designed structure can make the wings move in an “8” shape trajectory, and the motion in three directions can maintain good consistency, with good dynamic performance. Based on CFD simulation method, we analyzed that the wing has the conditions to achieve flight with good aerodynamic performance at the incoming flow speed of 5 m s?1 and frequency of 4 Hz, and studied the effects of angle of attack and flutter frequency on the aerodynamic performance of the aircraft. Finally, the force measurement test of the aircraft prototype is carried out using a force balance and a small wind tunnel. The test results show that the prototype can provide the average lift of 3.62 N and the average thrust of 2.54 N, which are in good agreement with the simulation results.

关键词: Dragonfy, Flapping wing micro air vehicle, Three-degrees-of-freedom, Aerodynamic performance

Abstract: Dragonflies have naturally high flying ability and flight maneuverability, making them more adaptable to harsh ecological environments. In this paper, a flapping wing bionic air vehicle with three-degrees-of-freedom is designed and manufactured by simulating the flight mode of dragonfly. Firstly, the body structure of dragonfly was analyzed, and then the design scheme of flapping wing micro air vehicle was proposed based on the flight motion characteristics and musculoskeletal system of dragonfly. By optimizing the configuration and using Adams to do kinematic simulation, it is shown that the designed structure can make the wings move in an “8” shape trajectory, and the motion in three directions can maintain good consistency, with good dynamic performance. Based on CFD simulation method, we analyzed that the wing has the conditions to achieve flight with good aerodynamic performance at the incoming flow speed of 5 m s?1 and frequency of 4 Hz, and studied the effects of angle of attack and flutter frequency on the aerodynamic performance of the aircraft. Finally, the force measurement test of the aircraft prototype is carried out using a force balance and a small wind tunnel. The test results show that the prototype can provide the average lift of 3.62 N and the average thrust of 2.54 N, which are in good agreement with the simulation results.

Key words: Dragonfy, Flapping wing micro air vehicle, Three-degrees-of-freedom, Aerodynamic performance