Gust disturbances, dynamic vertical inflow and ground effect are key adverse aerodynamic phenomena that induce variations in the forces acting on a multirotor and complicate its flight control. Miniature rotorcraft typically rely on simplified modelling of such effects to compute adjustments in thrust to counteract these forces. In the most basic case, disturbance force estimations are derived from the aircraft's motion and the generated thrust is assumed to exactly match that requested by the controller. However, such systems rely on the aircraft's trajectory to be affected before disturbances can be sensed and compensated. Numerous approaches presented over the last 15-20 years aim to reject external disturbances more quickly, but challenges remain. This paper presents a new approach in this category by measuring the instantaneous force of the rotors directly at the point of generation using load-cells and implementing high-speed control to accurately track the desired thrust. Measurements from load-cells were previously considered too noisy to provide meaningful input, but the experiments presented in the paper using purpose-built hardware from low-cost commodity components in single- and dual rotor see-saw models and a flying aircraft demonstrate both the feasibility and the effectiveness of the approach in the presence of complex aerodynamic phenomena.
Coaxial rotor drones have generated considerable interest because of energy efficiency and small size, but they are afflicted with inherent underactuation for roll and pitch control, although systems like swashplates have circumvented this limitation at the cost of greater mechanical complexity. This work presents a no...
Ali Jokar, Amin Talaeizadeh, A. Alasty· 0 citations
An aircraft's aerodynamic stability and controllability in pitch, roll, and yaw are determined by its flight performance and actual flight conditions. Traditional stability augmentation systems based on gyroscopic and inertial feedback are activated only after a disturbance has been applied, so the aircraft first acqui...
Toghrul Karimli, A. Mammadov, R. Guliyev et al.· Advances in Differential Equ...· 0 citations
The motion of ships and aircraft is governed by inertia and hydrodynamic or aerodynamic forces, so they do not stop immediately even when reverse thrust is applied. Consequently, operations such as maneuvering in harbors and landing require control that can decelerate and stop accurately near a target position, yet ful...
Tetsuhiro Miyazaki, Hideki Toda· Smart Systems and Devices· 0 citations
This paper addresses disturbance-induced oscillations in high-precision pendulum-based inclinometers, which reduce measurement availability despite the long-term stability of gravity-referenced sensing. To actively suppress these oscillations, a contactless six-coil electromagnetic actuation system is developed, togeth...
F. Capes, M. Bianchi, Roberto Gardenghi et al.· 0 citations
This paper investigates the trajectory tracking control of a powered parafoil in the presence of wind disturbances and actuator saturation. An anti-windup active disturbance rejection control method is developed on the basis of an eight-degree-of-freedom nonlinear model. For controller design and implementation, the sy...
Zhengxiang Jin, Wangyang Huang, Jiaming Yu et al.· Transactions of the Institut...· 0 citations
This paper conducts a systematic evaluation and study of the attitude control quality of a coaxial dual-rotor UAV under complex operating conditions. The existence of complex aerodynamic interference between rotors, strong nonlinearities, and severe cross-coupling between channels poses significant challenges to steady...
Jia-Geng Zhang, Zhe Yan, Shu-Meng Sun et al.· International Conference on...· 0 citations
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