DocumentCode :
1308813
Title :
Robust multivariable control of an engine-dynamometer system
Author :
Bunker, Byron J. ; Franchek, Matthew A. ; Thomason, Bruce E.
Author_Institution :
Sch. of Mech. Eng., Purdue Univ., West Lafayette, IN, USA
Volume :
5
Issue :
2
fYear :
1997
fDate :
3/1/1997 12:00:00 AM
Firstpage :
189
Lastpage :
199
Abstract :
We present the robust multivariable feedback controller design of a highly coupled, nonlinear diesel engine-dynamometer system. The performance goal is to maximize the closed loop reference tracking of prespecified engine speed and torque curves by reducing the output variations due to system nonlinearities/uncertainty, and loop interactions through feedback control. The difficulties in controlling engine-dynamometer systems include the large degree of loop interactions, induction-to-power delays, combustion uncertainties, and engine nonlinearities. The performance goal is realized by balancing the bandwidths of the loop transfer functions to avoid excessive loop interactions in the closed-loop system. Standard high-gain and high-bandwidth solutions cannot be used for this design since the system contains pure delays and the controller implementation has sample rate limitations. The engine-dynamometer models used for controller design are developed from spectral estimation techniques and step responses where the effects of the system nonlinearities are captured in a parametric uncertain format. The controllers are designed using a sequential frequency domain approach. The controllers are implemented on an 8.3L turbocharged diesel engine and eddy current dynamometer maintained at Cummins Engine Company, Columbus, IN. The controllers are evaluated based upon the ability of the closed-loop system to track step inputs and a transient test cycle
Keywords :
closed loop systems; control system synthesis; dynamometers; feedback; frequency response; internal combustion engines; multivariable control systems; robust control; step response; torque control; tracking; transfer functions; velocity control; 8.3L turbocharged diesel engine; Cummins Engine Company; closed loop reference tracking; closed-loop system; combustion uncertainties; eddy current dynamometer; engine nonlinearities; highly coupled nonlinear diesel engine-dynamometer system; induction-to-power delays; loop interactions; loop transfer functions; performance goal; robust multivariable feedback controller; spectral estimation techniques; step responses; system nonlinearities/uncertainty; Adaptive control; Control nonlinearities; Control systems; Couplings; Diesel engines; Feedback control; Nonlinear control systems; Robust control; Tracking loops; Uncertainty;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/87.556024
Filename :
556024
Link To Document :
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