解决可变缆长无人机运输系统的精准轨迹跟踪与实时缆长优化问题
Payload trajectory tracking control for aerial transportation systems with cable length online optimization
- 采用反步法设计控制策略,实现负载轨迹精准跟踪
- 在线优化缆长,平衡飞行器运动与缆长变化,无需人工规划
- 理论证明系统渐近稳定,仿真验证方法有效
缆索悬吊式空中运输系统在多个行业广泛应用。通过灵活调整多旋翼与负载之间的相对位置,可变长度缆索系统展现出更广阔的应用前景。相较于固定缆长系统,可变缆长引入了新的自由度,但也带来了更强的非线性及多旋翼、缆索与负载间的复杂动态耦合,给控制设计带来挑战。本文提出一种专为可变缆长空中运输系统设计的反步法控制策略,可精确跟踪负载轨迹并动态调节缆长。同时,设计了一种缆长生成器,在满足状态约束条件下实现缆长的在线优化,无需人工轨迹规划即可平衡多旋翼运动与缆长变化。通过李雅普诺夫技术与增长限制条件,保证闭环系统渐近稳定。仿真结果验证了所提方法在轨迹跟踪与缆长调节方面的有效性。
原文摘要 · Abstract (English)
Cable-suspended aerial transportation systems are employed extensively across various industries. The capability to flexibly adjust the relative position between the multirotor and the payload has spurred growing interest in the system equipped with variable-length cable, promising broader application potential. Compared to systems with fixed-length cables, introducing the variable-length cable adds a new degree of freedom. However, it also results in increased nonlinearity and more complex dynamic coupling among the multirotor, the cable and the payload, posing significant challenges in control design. This paper introduces a backstepping control strategy tailored for aerial transportation systems with variable-length cable, designed to precisely track the payload trajectory while dynamically adjusting cable length. Then, a cable length generator has been developed that achieves online optimization of the cable length while satisfying state constraints, thus balancing the multirotor's motion and cable length changes without the need for manual trajectory planning. The asymptotic stability of the closed-loop system is guaranteed through Lyapunov techniques and the growth restriction condition. Finally, simulation results confirm the efficacy of the proposed method in managing trajectory tracking and cable length adjustments effectively.
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