Payload trajectory tracking control for aerial transportation systems with cable length online optimization
By: Hai Yu , Zhichao Yang , Wei He and more
Potential Business Impact:
Adjusts flying robot's rope for better cargo moving.
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.
Similar Papers
Towards Fully Onboard State Estimation and Trajectory Tracking for UAVs with Suspended Payloads
Robotics
Drones can now carry and move heavy things precisely.
Trajectory control of a suspended load with non-stopping flying carriers
Systems and Control
Drones carry heavy things without stopping.
Partial Feedback Linearization Control of a Cable-Suspended Multirotor Platform for Stabilization of an Attached Load
Robotics
Keeps flying cranes steady with heavy loads.