DocumentCode :
1315450
Title :
Design and Validation of a Gain-Scheduled Controller for the Electronic Throttle Body in Ride-by-Wire Racing Motorcycles
Author :
Corno, Matteo ; Tanelli, Mara ; Savaresi, Sergio M. ; Fabbri, Luca
Author_Institution :
Delft Center for Syst. & Control (DCSC), Delft Univ. of Technol., Delft, Netherlands
Volume :
19
Issue :
1
fYear :
2011
Firstpage :
18
Lastpage :
30
Abstract :
This paper presents the analysis, design and validation of a gain-scheduled controller for an electronic throttle body (ETB) designed for ride-by-wire applications in racing motorcycles. Specifically, the open-loop dynamics of the system are studied in detail discussing the effects of friction based on appropriate experiments. Further, a linear time invariant nominal model of the system to be controlled is experimentally identified via a frequency-domain black box approach, together with the uncertainty bounds on the model parameters. Based on these results a model-based gain-scheduled proportional-integral-differential (PID) controller for throttle position tracking is proposed. The closed-loop stability of the resulting linear parametrically varying (LPV) system is proved by checking the feasibility of an appropriate linear matrix inequality (LMI) problem, and the state space representation of the closed-loop LPV system is experimentally validated. Finally, the performance of the controlled system is compared to the intrinsic limit of the actuator and tested under realistic use, namely both on a test-bench employing as set-point the throttle position recorded during test-track experiments and on an instrumented motorcycle.
Keywords :
closed loop systems; control system synthesis; frequency-domain analysis; friction; gain control; linear matrix inequalities; linear systems; motorcycles; open loop systems; position control; stability; state-space methods; three-term control; uncertain systems; vehicle dynamics; LMI problem; PID controller; closed-loop LPV system; closed-loop stability; controlled system; electronic throttle body; frequency-domain black box approach; friction; gain-scheduled controller; instrumented motorcycle; intrinsic limit; linear matrix inequality; linear parametrically varying system; linear time invariant nominal model; model parameters; model-based gain-scheduled proportional-integral-differential controller; open-loop dynamics; ride-by-wire racing motorcycles; state space representation; test-track experiments; throttle position tracking; uncertainty bounds; Control systems; DC motors; Friction; Motorcycles; Springs; Valves; Vehicle dynamics; Electronic throttle body (ETB); gain-scheduled control; linear parameter varying (LPV) model validation; motorcycle dynamics;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/TCST.2010.2066565
Filename :
5565518
Link To Document :
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