DocumentCode :
1556594
Title :
Robust two degree-of-freedom add-on controller design for automatic steering
Author :
Güvenç, Bilin Aksun ; Güvenç, Levent
Author_Institution :
Dept. of Mech. Eng., Istanbul Tech. Univ., Turkey
Volume :
10
Issue :
1
fYear :
2002
fDate :
1/1/2002 12:00:00 AM
Firstpage :
137
Lastpage :
148
Abstract :
A robust 2-DOF add-on controller design based on the disturbance observer is presented in this paper for improved performance in vehicle automatic steering. The application example is the benchmark problem on automatic steering of a city bus with large variations in mass and speed and for which the reference maneuvers and specifications are available in the literature. The analytical formulation of the compensator is presented, followed by evaluation and demonstration of the enhanced model regulation and disturbance rejection properties achieved by its use. Improved steering dynamics can be achieved using yaw rate feedback without the need for a yaw rate sensor. Noting that the steering angle rate actuator saturation forms a major limitation of performance, especially in the presence of the integrating actuator used in the city bus example, the performance enhancement due to the disturbance observer-based add-on compensator is investigated in the presence of actuator saturation. Finally, a disturbance feedforward-based add-on compensator is also presented for well-defined reference trajectories like the entering a bus stop bay maneuver, enabling preview
Keywords :
compensation; control system synthesis; feedforward; observers; road vehicles; robust control; transport control; ´bus stop bay entry maneuver; automatic steering; benchmark problem; city ´bus; city omnibus; disturbance feedforward-based add-on compensator; disturbance observer-based add-on compensator; disturbance rejection properties; enhanced model regulation; robust 2-DOF add-on controller design; robust two degree-of-freedom add-on controller design; steering angle rate actuator saturation; steering dynamics; vehicle automatic steering; yaw rate feedback; Actuators; Adaptive control; Automatic control; Cities and towns; Control systems; Feedback; Humans; Road vehicles; Robust control; Vehicle dynamics;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/87.974347
Filename :
974347
Link To Document :
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