DocumentCode :
1801011
Title :
An observer design for a poppet type pressure reducing valve
Author :
Jayaraman, Ganga P. ; Lunzman, Stephen V.
Author_Institution :
Airframe Syst. Div., Woodward Governor Co., Skokie, IL, USA
fYear :
2011
fDate :
28-30 Sept. 2011
Firstpage :
76
Lastpage :
81
Abstract :
This paper presents an observer design that may be used to improve the response and stability characteristics of a solenoid operated pressure-reducing valve. Most pressure-reducing valves have very little inherent damping, and can potentially exhibit unstable behavior due to fluid velocity effects during the opening of the poppet. One solution is to improve the dynamic characteristics of the valve by using a closed-loop control strategy. Here, the solenoid current, poppet position, the poppet velocity and the control pressure are feedback signals, used to increase the stability margin and the response time. The cost of the sensors and problems associated with taking derivatives make direct measurement infeasible. We propose to obtain estimates of the poppet position and poppet velocity from only measurements of the valve control pressure and the solenoid current. This is done using a state observer that estimates the poppet position and the poppet velocity without calculating derivatives. These estimates may then be used in a feedback controller that is designed to meet the valve transient response specifications.
Keywords :
closed loop systems; control system synthesis; electric current control; feedback; observers; pressure control; solenoids; stability; transient response; valves; closed-loop control; control pressure; damping; feedback controller design; feedback signal; fluid velocity effect; observer design; poppet opening; poppet position estimation; poppet type pressure reducing valve; poppet velocity estimation; pressure control; solenoid current control; solenoid operated pressure-reducing valve; stability characteristics; state observer; valve transient response specification; Electronic countermeasures; Mathematical model; Observers; Orifices; Pistons; Solenoids; Valves;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control Applications (CCA), 2011 IEEE International Conference on
Conference_Location :
Denver, CO
Print_ISBN :
978-1-4577-1062-9
Electronic_ISBN :
978-1-4577-1061-2
Type :
conf
DOI :
10.1109/CCA.2011.6044498
Filename :
6044498
Link To Document :
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