变形飞行器在外界干扰下的超扭预定时间性能控制

IF 3.4 2区 物理与天体物理 Q1 ENGINEERING, AEROSPACE
Naying Li , Yibo Ding , Xuebao Ma , Tianchen Zhang , Jin Cheng , Xiaokui Yue
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引用次数: 0

摘要

高速变形飞机由于其独特的结构、动力和环境特性,具有强耦合和非线性动力学特性,其复杂程度明显高于常规飞机。传统控制器在严重的外部干扰和参数扰动下无法达到较高的控制质量,不能满足多运行约束下快速响应、强鲁棒性和高精度控制的要求。为了解决这些问题,本文首先建立了变形飞行器的综合运动学和动力学模型。动力学模型采用牛顿-欧拉矢量力学方法,考虑了机身和机翼的平移和旋转运动。导出的多刚体动力学方程分析了气动力、重力、推力和控制力矩,同时有效地解决了机身和机翼运动之间的耦合效应。在此基础上,提出了一种新的预定时间规定性能控制器,有效地限制了变形飞行器的瞬态和稳态性能。该控制器将有约束的跟踪误差转化为无约束的跟踪误差,保证原跟踪误差满足规定的范围。在此基础上,引入超扭转算法和双幂趋近律来加速收敛和抑制系统抖振。仿真结果表明,该控制器能够实现高速变形飞行器在变形过程中的稳定控制,有效满足复杂动态环境下的飞行约束。此外,还考虑了所提出控制器的实际实现问题,如传感器噪声、执行器延迟和计算可行性,支持其在实时飞行场景中的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Predetermined-time super-twisting prescribed performance control for morphing aircraft under external disturbances
High-speed morphing aircraft is significantly more complex than conventional aircraft due to its unique structure, dynamic, and environmental characteristic, characterized by strong coupling and nonlinear dynamics. Traditional controllers are unable to achieve high control quality under severe external disturbances and parameter perturbations, nor can they meet the requirements for fast response, strong robustness, and high-precision control under multiple operational constraints. To address these challenges, this paper firstly establishes a comprehensive kinematic and dynamic model of the morphing aircraft. The dynamic model is conducted using the Newton-Euler vector mechanics approach, which considers the translational and rotational motions of both the fuselage and wings. The derived multi-rigid body dynamical equations analyze aerodynamic forces, gravitational forces, thrust, and control torques, while effectively solving the coupling effects between the fuselage and wing motions. Subsequently, a novel predetermined-time prescribed performance controller is proposed in this paper, which effectively limits the transient and steady-state performance of the morphing aircraft. The proposed controller transforms constrained tracking errors into unconstrained ones, ensuring that the original tracking error satisfies prescribed bounds. Building on this framework, a super-twisting algorithm and double power reaching law are introduced to accelerate convergence and suppress system chattering. Finally, simulation results demonstrate that the controller achieves stable control of high-speed morphing aircraft during the morphing process, effectively satisfying flight constraints in complex and dynamic environments. In addition, practical implementation issues of the proposed controller have been considered, such as sensor noise, actuator delays, and computational feasibility, supporting its feasibility in real-time flight scenarios.
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来源期刊
Acta Astronautica
Acta Astronautica 工程技术-工程:宇航
CiteScore
7.20
自引率
22.90%
发文量
599
审稿时长
53 days
期刊介绍: Acta Astronautica is sponsored by the International Academy of Astronautics. Content is based on original contributions in all fields of basic, engineering, life and social space sciences and of space technology related to: The peaceful scientific exploration of space, Its exploitation for human welfare and progress, Conception, design, development and operation of space-borne and Earth-based systems, In addition to regular issues, the journal publishes selected proceedings of the annual International Astronautical Congress (IAC), transactions of the IAA and special issues on topics of current interest, such as microgravity, space station technology, geostationary orbits, and space economics. Other subject areas include satellite technology, space transportation and communications, space energy, power and propulsion, astrodynamics, extraterrestrial intelligence and Earth observations.
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