Observer-based adaptive control for slung payload stabilization with a fully-actuated multirotor UAV

ISA Trans. 2024 Apr:147:109-117. doi: 10.1016/j.isatra.2024.02.015. Epub 2024 Feb 26.

Abstract

This article presents an observer-based adaptive sliding mode controller for a fully-actuated hexacopter unmanned aerial vehicle, designed for trajectory tracking in a perturbed environment while carrying a cable-suspended payload. Based on the unavailability of a payload swing sensor, an extended high-gain observer is designed to provide full-state and disturbance estimation including payload motion. Such disturbances are compensated into the control loop to dampen the oscillations, thus improving the flight performance of the hexacopter driven by the adaptive control, providing robustness against bounded perturbations and chattering reduction. The stability analysis of the observer-based controller is guaranteed through Lyapunov theory. Simulations using a multibody emulator demonstrate time reduction in payload dampening while controlling the aircraft trajectory, compared to a feedback regulation-based adaptive controller.

Keywords: Cable suspended payload; Extended observer; Hexacopter UAV; Sliding mode control.