DocumentCode :
1264301
Title :
Fault Diagnosis and Fault-Tolerant Control Strategy for the Aerosonde UAV
Author :
Bateman, François ; Noura, Hassan ; Ouladsine, Mustapha
Author_Institution :
Paul Cezanne Univ., Marseille, France
Volume :
47
Issue :
3
fYear :
2011
fDate :
7/1/2011 12:00:00 AM
Firstpage :
2119
Lastpage :
2137
Abstract :
A fault detection and diagnosis (FDD) and a fault-tolerant control (FTC) system for an unmanned aerial vehicle (UAV) subject to control surface failures are presented. This FDD/FTC technique is designed considering the following constraints: the control surface positions are not measured and some actuator faults are not isolable. Moreover, the aircraft has an unstable spiral mode and offers few actuator redundancies. Thus, to compensate for actuator faults, the healthy controls may move close to their saturation values and the aircraft may become uncontrollable; this is critical due to its open-loop unstability. A nonlinear aircraft model designed for FTC researches has been proposed. It describes the aerodynamic effects produced by each control surface. The diagnosis system is designed with a bank of unknown input decoupled functional observers (UIDFO) which is able to estimate unknown inputs. It is coupled with an active diagnosis method in order to isolate the faulty control. Once the fault is diagnosed, an FTC based on state feedback controllers aims at sizing the stability domain with respect to the flight envelope and actuator saturations while setting the dynamics of the closed-loop system. The complete system was demonstrated in simulation with a nonlinear model of the aircraft.
Keywords :
actuators; aerodynamics; aircraft control; closed loop systems; fault diagnosis; fault tolerance; nonlinear control systems; observers; open loop systems; redundancy; remotely operated vehicles; stability; state feedback; FTC research; FTC technique; active diagnosis method; actuator fault; actuator redundancy; aerosonde UAV; closed loop system; control surface failure; control surface position; fault diagnosis; fault tolerant control strategy; flight envelope; nonlinear aircraft model; open loop unstability; saturation value; state feedback controller; unknown input decoupled functional observer; unmanned aerial vehicle; unstable spiral mode; Actuators; Aerodynamics; Aircraft; Atmospheric modeling; Fault tolerance; Fault tolerant systems; Mathematical model;
fLanguage :
English
Journal_Title :
Aerospace and Electronic Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9251
Type :
jour
DOI :
10.1109/TAES.2011.5937287
Filename :
5937287
Link To Document :
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