Design of an active wing-folding biomimetic flapping-wing air vehicle

Y. Zhu, Longhua Zou, Huyue Zhuang, Hao Liu, Pingxia Zhang, Guangyao Zhou
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Abstract

"In nature, birds and bats dynamically alter their wing shapes to suit various flight environments and tasks. This paper focuses on the design and validation of a biomimetic flapping-wing aerial vehicle, named FlexiWing, which features a unique mechanism for active wing deformation. This mechanism allows the wings to adjust their shapes flexibly in response to flight demands, significantly enhancing attitude control and maneuverability." "This study began with an in-depth exploration of biomimetic principles, focusing particularly on how birds and bats achieve precise control during flight through active wing deformation. Subsequently, we present a detailed account of the design and fabrication process of the active folding biomimetic flapping-wing aerial vehicle, including the design of mechanical mechanisms and material selection. Utilizing lightweight nylon materials and hollow carbon fiber rods, we successfully constructed a mechanically foldable wing structure. To achieve precise control over the aircraft's movement, an embedded control system was designed, comprising an onboard embedded flight controller and ground-based equipment. The onboard controller uses a high-performance ESP32-C3 processor and a JY901 inertial measurement unit to acquire real-time attitude information of the aircraft. The control system incorporates Wi-Fi communication technology, enabling operators to send commands via a remote control or personal computer to manage flight modes and attitudes. Ultimately, a series of flight experiments were conducted to validate the performance of FlexiWing. The results demonstrate that FlexiWing exhibits remarkable maneuverability and stability, capable of achieving high-precision attitude control through active wing folding, making it adaptable to complex environments and tasks."
设计主动折翼仿生拍翼飞行器
"在自然界中,鸟类和蝙蝠会动态地改变翅膀形状,以适应各种飞行环境和任务。本文的重点是设计和验证一种名为 "FlexiWing "的生物仿真拍翼飞行器。这种机制可使机翼根据飞行需求灵活调整形状,从而显著增强姿态控制和机动性。"这项研究首先对生物仿生原理进行了深入探讨,尤其侧重于鸟类和蝙蝠如何在飞行过程中通过主动翅膀变形实现精确控制。随后,我们详细介绍了主动折叠仿生拍翼飞行器的设计和制造过程,包括机械机构的设计和材料选择。利用轻质尼龙材料和中空碳纤维棒,我们成功地构建了一个机械可折叠机翼结构。为了实现对飞行器运动的精确控制,我们设计了一套嵌入式控制系统,包括机载嵌入式飞行控制器和地面设备。机载控制器使用高性能 ESP32-C3 处理器和 JY901 惯性测量单元来获取飞机的实时姿态信息。控制系统采用了 Wi-Fi 通信技术,使操作人员能够通过遥控器或个人电脑发送指令,管理飞行模式和姿态。最终,进行了一系列飞行实验来验证 FlexiWing 的性能。结果表明,FlexiWing 具有出色的机动性和稳定性,能够通过主动折叠机翼实现高精度姿态控制,使其能够适应复杂的环境和任务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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