Adaptive control of a quadcopter under actuator failures
Autor
Matheus Kleming de Castro Cunha
Orientador
- Orientador Davi Antônio dos Santos
Área de Concentração
Projeto Aeronáutico, Estruturas e Sistemas Aeroespaciais
Data de Defesa
24/07/2018
Número da Tese
74986
Resumo
The multirotor aerial vehicles (MAV) control problem has been widely studied in the recent years. Despite the attention the MAVs have received in applications, such as transportation, surveillance and agriculture, they are still not fully autonomous for commercial flights, and one of the reasons is the safety of the flight. Adaptive controllers can be applied to MAVs under actuators failures as a way to cope with an acceptable degradation in the system performance. The present work is concerned with the design of a model reference adaptive control (MRAC) using a single hidden layer (SHL) neural network (NN) for the attitude control of a quadrotor aerial vehicle subject to a propeller abrupt failure, and a classical MRAC was designed for the altitude control loop, designed to work together with a baseline Linear Quadratic Regulator (LQR). Besides, the motion in x-y plane is controlled by a PD control topology. A Hardware-in the-Loop (HIL) simulation scheme is adopted to evaluate the method. The HIL simulation consists in implementing the translation dynamics of the vehicle numerically and its attitude dynamics in the Quanser 3 DOF Hover bench experiment. In this work, the mechanical failure on the experiment, such as a loss of blade's parts, is considered to be a sudden decrease on the voltage applied to a rotor. It is shown that the proposed scheme can increase the system robustness to an abrupt fault in the MAV propeller.
