摘要
As a new type of flying robot, the butterfly-inspired flapping-wing aerial robot (FWAR) imitates the structure and the flight mode of biological butterflies, which can effectively integrate into and adapt to complex environment, and has broad application prospects in the field of civil-military integration. At present, most of the researches on butterfly-inspired FWARs are focused on the studying of flight mechanisms of biological butterflies, and the development of butterfly-inspired FWARs capable of free controlled flight is rarely covered. In this paper, a butterfly-inspired FWAR based on wire-driven steering, named USTButterfly-S, is developed with a wingspan of 50 cm and a weight of 50 g, which can realize a free controlled flight up to 5 minutes. Firstly, considering the flapping characteristics of biological butterflies, a symmetrical flapping-wing drive mechanism with double cranks and double rockers is designed. Then, a bionic airfoil is designed by mimicking the wing shape of the swallowtail butterfly. Geometric analysis shows that the wings of USTButterfly-S have a good morphological similarity with that of the swallowtail butterfly. Next, aiming at the steering control problem of butterfly-inspired FWARs, a wire-driven mechanism is used for the first time to pull the wings and modulate the wing areas, thereby realizing the tailless heading control. Finally, integrating with the self-designed flight control system, USTButterfly-S can realize indoor circling flight and real-time aerial photography. In the actual flight experiments, USTButterfly-S exhibits similar flight characteristics as biological butterflies.
| 投稿的翻译标题 | System design and control of a butterfly-inspired flapping-wing aerial robot based on wire-driven steering |
|---|---|
| 源语言 | 繁体中文 |
| 页(从-至) | 1203-1210 |
| 页数 | 8 |
| 期刊 | Kongzhi Lilun Yu Yingyong/Control Theory and Applications |
| 卷 | 39 |
| 期 | 7 |
| DOI | |
| 出版状态 | 已出版 - 7月 2022 |
| 已对外发布 | 是 |
关键词
- bionic robot
- butterfly-inspired flapping-wing aerial robot
- system design
- tailless control
- wire-driven
学术指纹
探究 '基于线驱转向的仿蝴蝶扑翼飞行机器人系统设计与控制' 的科研主题。它们共同构成独一无二的指纹。引用此
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