Short Landing Performance and Scale Effect of a Flapping Wing Aircraft

被引:2
|
作者
Chen, Si [1 ]
Guo, Shijun [2 ]
Li, Hao [2 ]
Tong, Mingbo [1 ]
Ji, Bing [3 ]
机构
[1] Nanjing Univ Aeronaut & Astronaut, Coll Aerosp Engn, Nanjing 210016, Peoples R China
[2] Cranfield Univ, Sch Aerosp Transport & Mfg, Cranfield MK43 0AL, Beds, England
[3] Shandong Univ, Sch Control Sci & Engn, Jinan 250061, Peoples R China
基金
国家重点研发计划;
关键词
Flapping wing; Unsteady aerodynamic method; Short landing; Descending velocity; UNSTEADY AERODYNAMIC MODEL; KINEMATICS; DESIGN; INSECT; FLIGHT;
D O I
10.1061/(ASCE)AS.1943-5525.0001198
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
An investigation was made into the performance and scale effect of birdlike flapping wing aircraft in short landing. A flapping mechanism is proposed to transform a powered shaft rotation to an optimal kinematics of wing motion combining up-and-down stroke, pitching, and fore-and-back swing. An unsteady aerodynamic method (UAM) was developed based on potential flow theory, including the leading- and trailing-edge vortices generated by a flapping wing. After validation based on computational fluid dynamics (CFD) results, the method is used to calculate the aerodynamic forces of flapping wings. The flight dynamics model of the aircraft is built using Automated Dynamic Analysis of Mechanical Systems (ADAMS) software version 2012 interfacing with the UAM coded in Python. The coupling between the inertial force of the body motion and the aerodynamic forces from flapping wings and tailplane is incorporated into the numerical simulation of the aircraft landing. Taking a 0.196-kg birdlike aircraft model with a prescribed kinematics of flapping wing motion as an example, a parametric study was carried out in a small range of initial tailplane angles and subsequent flapping frequencies. Optimal parameters were obtained to reduce the forward and descending velocities of the aircraft to a minimum value for safe and short landing performance. The study is then extended to aircraft of different geometric scales in a range of 0.5-10 associated with a weight scale of 0.1-1,000. Based on the study, a method is developed to determine the required flapping frequency for birdlike aircraft of different scales to achieve a short landing target with the descending velocity reduced to a specified value. For the aforementioned example aircraft (geometric scale of 1), the flapping frequency is 4 Hz to reduce both descending and forward velocities to 50% of the landing performance in fixed-wing mode, while a birdlike aircraft on a geometric scale of 10 and landing weight of 196 kg requires a minimum flapping frequency of 1.25 Hz to achieve a 50% reduction of the descending and forward velocities compared with the same aircraft landing in fixed-wing mode. (c) 2020 American Society of Civil Engineers.
引用
收藏
页数:14
相关论文
共 50 条
  • [31] The Effect of Spanwise Folding on the Aerodynamic Performance of a Passively Deformed Flapping Wing
    Qi, Ming
    Ding, Menglong
    Zhu, Wenguo
    Li, Shu
    BIOMIMETICS, 2024, 9 (01)
  • [32] The effect of graded flexural rigidity on flapping wing insect flight performance
    Reade, J. E.
    Jankauski, M.
    INTEGRATIVE AND COMPARATIVE BIOLOGY, 2023, 62 : S260 - S260
  • [33] Effect of fore-wing motion on increasing the performance of a tandem flapping wing power generator
    Fenercioglu, Idil
    Karakas, Ferhat
    JOURNAL OF THE FACULTY OF ENGINEERING AND ARCHITECTURE OF GAZI UNIVERSITY, 2019, 34 (04): : 1897 - 1915
  • [34] Effect of Wing-Wing Interaction on the Propulsive Performance of Two Flapping Wings at Biplane Configuration
    Zhu, Jianyang
    Lei, Bin
    APPLIED BIONICS AND BIOMECHANICS, 2018, 2018
  • [35] Numerical study on the effect of flexiblity of a flapping wing on its aerodynamic performance
    Zhu, J.-Y. (zhujianyang02@163.com), 1600, Tsinghua University (30):
  • [36] Influence of wing camber on aerodynamic performance of flapping wing rotor
    Shao Haoyuan
    Li Daochun
    Kan Zi
    Li Huadong
    Yuan Dian
    Xiang Jinwu
    AEROSPACE SCIENCE AND TECHNOLOGY, 2021, 113
  • [37] Effects of airfoil on aerodynamic performance of flapping wing
    Zhao M.
    Zou Y.
    Fu Q.
    He W.
    Biomimetic Intelligence and Robotics, 2021, 1
  • [38] Analysis of Aerodynamic Characteristics of Bionic Flapping Wing Aircraft Based on XFlow
    Zhang, Zhi-Jun
    Chen, Mo
    Yang, He-Jie
    Sun, Ji-Yu
    Dongbei Daxue Xuebao/Journal of Northeastern University, 2021, 42 (06): : 821 - 828
  • [39] Attitude control of flapping wing aircraft based on energy optimization and ESO
    Li L.
    Wang H.
    Cui L.
    Biomimetic Intelligence and Robotics, 2021, 1
  • [40] Structure Design and Mathematical Modeling of Bionic Butterfly Flapping Wing Aircraft
    Zhu, Yue
    Huang, Hengjing
    Wang, Yanlong
    Han, Zhenfeng
    Zhong, Jun
    2021 IEEE INTERNATIONAL CONFERENCE ON MECHATRONICS AND AUTOMATION (IEEE ICMA 2021), 2021, : 1249 - 1254