Simulation and flight experiments of a quadrotor tail-sitter vertical take-off and landing unmanned aerial vehicle with wide flight envelope

Author:

Lyu Ximin1ORCID,Gu Haowei1,Zhou Jinni1,Li Zexiang1,Shen Shaojie1,Zhang Fu2

Affiliation:

1. Department of Electronic and Computer Engineering, Hong Kong University of Science and Technology, Kowloon, Hong Kong

2. Department of Mechanical Engineering, University of Hong Kong, Pokfulam, Hong Kong

Abstract

This paper presents the modeling, simulation, and control of a small-scale electric powered quadrotor tail-sitter vertical take-off and landing unmanned aerial vehicle. In the modeling part, a full attitude wind tunnel test is performed on the full-scale unmanned aerial vehicle to capture its aerodynamics over the flight envelope. To accurately capture the degradation of motor thrust and torque at the presence of the forward speed, a wind tunnel test on the motor and propeller is also carried out. The extensive wind tunnel tests, when combined with the unmanned aerial vehicle kinematics model, dynamics model and other practical constraints such as motor saturation and delay, lead to a complete flight simulator that can accurately reveal the actual aircraft dynamics as verified by actual flight experiments. Based on the developed model, a unified attitude controller and a stable transition controller are designed and verified. Both simulation and experiments show that the developed attitude controller can stabilize the unmanned aerial vehicle attitude over the entire flight envelope and the transition controller can successfully transit the unmanned aerial vehicle from vertical flight to level flight with negligible altitude dropping, a common and fundamental challenge for tail-sitter vertical take-off and landing aircrafts. Finally, when supplied with the designed controller, the tail-sitter unmanned aerial vehicle can achieve a wide flight speed envelope ranging from stationary hovering to fast level flight. This feature dramatically distinguishes our aircraft from conventional fixed-wing airplanes.

Funder

Innovation and Technology Commission

Publisher

SAGE Publications

Subject

Aerospace Engineering

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1. Trajectory generation and tracking control for aggressive tail-sitter flights;The International Journal of Robotics Research;2023-11-07

2. A Tailsitter UAV Based on Bioinspired, Tendon-Driven, Shape-Morphing Wings with Aerofoil-Shaped Artificial Feathers;2023 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS);2023-10-01

3. MARSIM: A Light-Weight Point-Realistic Simulator for LiDAR-Based UAVs;IEEE Robotics and Automation Letters;2023-05

4. Modeling and Multimodal Control of a Micro Tail-Sitter Vehicle;Proceedings of 2022 International Conference on Autonomous Unmanned Systems (ICAUS 2022);2023

5. Transition performance analysis of quadrotor biplane tailsitter using computational fluid dynamics;MACHINE LEARNING AND INFORMATION PROCESSING: PROCEEDINGS OF ICMLIP 2023;2023

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