用双自由度曲柄滑块机构实现鱼形机器人推进与转向解耦,兼顾高速与灵活转弯。
Design, Modeling and Direction Control of a Wire-Driven Robotic Fish Based on a 2-DoF Crank-Slider Mechanism
- 采用2-DoF曲柄滑块机构实现推进与转向独立控制
- 实测可实现游泳、转向及方向调控,速度与机动性兼备
- 适合需要高机动水下机器人的环境监测场景
近年来,仿生鱼形机器人因其生物模拟设计和在环境监测与生物调查中的应用潜力而受到广泛关注。在采用体尾鳍(BCF)运动模式的机器人中,电机驱动是主流方案。部分方法使用多个伺服电机实现精确的躯干弯曲控制,而另一些则通过无刷电机经钢丝或连杆驱动尾部,以获得更高的振荡频率和游动速度。然而,前者通常游动速度受限,后者则机动性差,能平滑转向的较少。为解决这一矛盾,本文开发了一种基于2-自由度(DoF)曲柄滑块机构的线缆驱动仿生鱼,实现推进与转向解耦,兼具高速游动与敏捷转向能力。本文首先介绍了机器人的设计,包括弹性骨架、防水结构及实现解耦的驱动机构;随后建立了驱动建模与身体动力学模型以分析运动行为;提出一种前馈-反馈结合的控制策略,实现推进与转向的独立调节;最后通过一系列原型实验验证了设计、建模与控制的可行性,成功实现了游泳、转向与方向控制。
原文摘要 · Abstract (English)
Robotic fish have attracted growing attention in recent years owing to their biomimetic design and potential applications in environmental monitoring and biological surveys. Among robotic fish employing the Body-Caudal Fin (BCF) locomotion pattern, motor-driven actuation is widely adopted. Some approaches utilize multiple servo motors to achieve precise body curvature control, while others employ a brushless motor to drive the tail via wire or rod, enabling higher oscillation and swimming speeds. However, the former approaches typically result in limited swimming speed, whereas the latter suffer from poor maneuverability, with few capable of smooth turning. To address this trade-off, we develop a wire-driven robotic fish equipped with a 2-degree-of-freedom (DoF) crank-slider mechanism that decouples propulsion from steering, enabling both high swimming speed and agile maneuvering. In this paper, we first present the design of the robotic fish, including the elastic skeleton, waterproof structure, and the actuation mechanism that realizes the decoupling. We then establish the actuation modeling and body dynamics to analyze the locomotion behavior. Furthermore, we propose a combined feedforward-feedback control strategy to achieve independent regulation of propulsion and steering. Finally, we validate the feasibility of the design, modeling, and control through a series of prototype experiments, demonstrating swimming, turning, and directional control.
Thank you to arXiv for use of its open access interoperability. PaperDance 不是 arXiv 官方产品;中文卡片由大模型生成,请以原文为准。