Based on research into bionic butterflies for environmental detection and ecological management, a scheme was proposed to develop and manufacture a bionic aircraft with two wings inspired by specific butterfly species. A flapping-wing aircraft with a simple structure was designed, and its two-wing design was optimized. The research focused on several key areas: the design and optimization of the wings, the development of the transmission mechanism, hardware design and fabrication, and 3D printing for component manufacturing. This resulted in the bionic replication of the wing shape and structure of the Tiger Papilio butterfly. The final bionic butterfly features a wingspan of 29.5 cm and a total weight of 13.8 g. This project integrates mechatronic principles and provides a valuable reference for advancements in the field of bionic butterflies. Future research could explore the aerodynamic characteristics of wings and innovative design approaches in greater depth.
Zhang Y, Li S, Wang X, et al., 2024, Butterfly Flying Mechanism and Summarized Research Progress in Imitation of Butterfly Flapping Wing Flight Vehicle. Journal of Engineering Proceedings, 2024(9): 582–1593.
Gao Y, Zhong S, Xiong Z, et al., 2019, Design and Analysis of Bionic Butterfly Robot. Mechanical and Electrical Engineering Technology, 53(8): 97–100, 123.
Chen Q, Wan L, Zhang J, 2018, Bionic Butterfly Mechanism Design Based on High Lift Mechanism of Insects. Journal of Nanchang Hangkong University (Natural Science Edition), 32(3): 14–18, 49.
Mu Z, 2019, Research on Design, Manufacture and Performance of Biomimetic Functional Surface Based on Typical Butterfly Wing, thesis, Jilin University.
Ye L, 2019, Imitation of Aircraft Design and Manufacture of Butterfly Research, thesis, Shanghai Jiaotong University.
Lu Z, Tian G, Li R, et al., 2024, Single and Double Electric Machinery Transmission Direct Comparative Study on the Performance of the System. Journal of Automobile Engineering, 2024(2): 310–319.
Zhang R, He W, Wang X, et al., 2022, Design and Aerodynamic Analysis of Cam-Rocker Type Flapping Mechanism for Flapping Wing Aircraft. Chinese Journal of Applied Mechanics, 39(01): 72–78.
Xiao Y, Cui F, Zhang Y, et al., 2023, Butterfly-Like Flapping-Wing Aircraft: Research Progress, Challenges and Future Development. Unmanned Systems Technology, 6(3): 45–58. https://doi.org/10.19942/j.issn.2096-5915.2023.03.25
Sun M, Huang H, 2006, Biomimetic Mechanics of Micro-Aircraft—Aerodynamic Characteristics of Butterfly Flight. Journal of Beijing University of Aeronautics and Astronautics, 32(10): 1146–1151.
Lu Z, Tian G, Li R, et al., 2024, Single and Double Electric Machinery Transmission Direct Comparative Study on the Performance of the System. Journal of Automobile Engineering, 2024(2): 310–319.
Li H, Wang H, Liu X, 2024, The Response Surface Method to Optimize the PLA Material Mechanical Properties of 3D Printing Specimens. Journal of Plastic Science and Technology, 52(10): 130–135.
Mu X, 2022, Bionic Flapping-Wing Flight Robot Autonomous Flight Control System Design, thesis, Beijing University of Science and Technology.
Huang H, He W, Zou Y, et al., 2020, System Design and Control of Butterfly Flapping Wing Flying Robot Based on Line Drive Steering. Control Theory and Applications, 39(7): 1203–1210.
Cheng H, 2020, Overall Design and Control Simulation Imitation Butterfly Craft, thesis, Nanjing University of Aeronautics and Astronautics
Zhang J, Chen H, Lu Q, et al., 2018, Mechanical Analysis of Flapping Flight of Polythymus Hydalia. Biological Resources, 40(1): 57–63.