控制理论(社会学)
模型预测控制
空气动力学
姿态控制
PID控制器
非线性系统
万向节
飞行操纵面
工程类
修剪
计算机科学
级联
转子(电动)
扭矩
理论(学习稳定性)
振动
控制工程
控制系统
内环
输入整形
振动控制
空气动力
线性二次调节器
功率(物理)
直升机旋翼
解耦(概率)
纵向静稳定性
增益调度
控制力矩陀螺仪
控制器(灌溉)
滑模控制
作者
Xun Huang,Linghai Lu,James Ferris Whidborne,Marilena Pavel
出处
期刊:Journal of Guidance Control and Dynamics
[American Institute of Aeronautics and Astronautics]
日期:2026-05-31
卷期号:49 (9): 2677-2693
摘要
To enhance the aerodynamic efficiency of micro aerial vehicles (MAVs) with rotary wings, a bio-inspired hybrid flapping-wing rotor (HFWR) configuration can be designed that achieves a power efficiency more than twice that of conventional rotors. Nevertheless, up to the present, the controllable flight of HFWR has so far eluded realization due to severe flapping-induced structural vibrations and nonlinear coupling between aerodynamic and elastic dynamics. This paper provides a practical step toward stable, controllable HFWR flight through two key innovations: a thrust-vectoring gimbal architecture that delivers continuous control moments under strong oscillations, and an enhanced nonlinear model predictive control (E-MPC) framework implemented as a distributed two-layer architecture. In this architecture, the outer layer consists of a lower-rate offboard MPC that generates constraint-aware attitude trim and bias commands, while the inner layer is a high-rate onboard proportional angular-rate loop that provides rapid damping of high-frequency perturbations caused by flapping-induced vibrations and communication or optimization latency. Hover and yaw flight tests demonstrate that the integrated architecture improves attitude stability compared with cascade PID and a baseline offboard MPC without the onboard rate loop, reducing peak deviation, overshoot, and steady-state error by up to 83%, 92%, and 80%, respectively, while substantially lowering control energy. These results demonstrate a practical pathway toward stable control of flapping-rotor MAVs for the first time, bridging the gap between bio-inspired aerodynamic efficiency and flight controllability.
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