Aug 2026· Aerospace· Vol 13, pp. 725· 0 citations· 63 references
Abstract
Flying-wing aircraft are more susceptible to wind disturbance due to their smaller wing loading, making gust alleviation critical for flight performance and safety. Conventional control surfaces may exhibit insufficient manipulation efficiency on such configurations, motivating the adoption of active flow control, particularly circulation control (CC) due to its favorable control efficiency. This paper presents an Active Disturbance Rejection Control (ADRC) framework for gust load alleviation (GLA) of flying-wing aircraft equipped with CC actuators, which enables real-time estimation and compensation of both gust disturbance and practical uncertainties and is validated through closed-loop wind-tunnel experiments under various sinusoidal gust conditions. An unsteady aerodynamic model with experimental data is established and simulations are performed for further investigation of alleviation performance and response characteristics under a wide range of gust conditions. Results show that both ADRC and PID exhibit degraded performance at higher gust frequencies and larger gust ratios, but ADRC achieves higher alleviation efficiency across the tested conditions. Furthermore, ADRC maintains satisfactory performance with actuator delays up to 0.04 s and outperforms PID under measurement noise and Dryden turbulence. These findings validate the effectiveness and robustness of ADRC for GLA, underscoring its practical potential for active flow control systems.
To address the challenge of simultaneously satisfying attitude stability constraints and achieving multi-motor energy efficiency optimization for a hexarotor UAV under complex low-altitude gust disturbances, this paper proposes a coordinated control method that integrates high-order fully actuated disturbance rejection...
Low-altitude general aviation aircraft and unmanned aerial vehicles (UAVs) are widely deployed for complex operational tasks, yet low-altitude gusts and crosswind disturbances induce severe airspeed fluctuations, leading to variable lift, unstable flight altitude, and perturbed pitch attitude. Such aerodynamic fluctuat...
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...
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Flapping-wing aerial manipulators (FW-AEROMs) hold considerable promise for delivering high efficiency and minimal mass in robotic applications. Nevertheless, their inherently nonlinear, time-varying dynamics render them particularly vulnerable to modeling errors and environmental perturbations, thereby compromising ma...
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This paper addresses multi-source composite disturbances in photovoltaic cleaning UAVs during continuous operation, including fluid-structure sloshing in the tank, time-varying mass decay, and near-wall unsteady aerodynamic interference. We propose an adaptive sliding-mode composite disturbance rejection strategy with...
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