DocumentCode
3522265
Title
Design, fabrication, testing, and fuzzy modeling of a large magnetorheological damper for vibration control in a railcar
Author
Atray, Vipul S. ; Roschke, Paul N.
Author_Institution
Ocean Design Associates, Houston, TX, USA
fYear
2003
fDate
22-24 April 2003
Firstpage
223
Lastpage
229
Abstract
This paper presents the procedure used for design, fabrication, testing, and numerical modeling of a magnetorheological (MR) damper that is to be applied for vibration control in a 70-ton railcar. MR dampers are semiactive vibration control devices whose damping characteristics can be modified in real time by varying an applied current. Design parameters for the MR damper are estimated from those exhibited by a linear viscous damper that exerts the necessary force required to limit vertical vibrations of the rail truck within acceptable limits. An MR damper is fabricated by modifying the piston of a standard hydraulic damper to function as a solenoid. The assembled MR damper is tested in a uniaxial testing machine by subjecting it to sinusoidal and random displacements while simultaneously varying the current flowing in the solenoid. A variable magnetic field is applied to the MR fluid that fills the damper cavity and the resisting force exerted by the damper is recorded. Data collected in the laboratory are used to train a fuzzy model of the MR damper that characterizes its behavior. Results indicate that a fuzzy model of the MR damper can predict its behavior with a sufficient degree of accuracy while requiring minimal computational time.
Keywords
damping; fuzzy set theory; magnetic fields; magnetorheology; railways; solenoids; testing; vibration control; 70 ton; damper cavity; damping characteristics; fuzzy modeling; linear viscous damper; magnetorheological damper; minimal computational time; neuro fuzzy modeling; railcar; random displacements; resisting force; semiactive vibration control devices; sinusoidal displacements; solenoid; standard hydraulic damper piston; uniaxial testing machine; variable magnetic field; vertical vibrations limiting; vibration control; Damping; Fabrication; Fuzzy control; Numerical models; Pistons; Rails; Shock absorbers; Solenoids; Testing; Vibration control;
fLanguage
English
Publisher
ieee
Conference_Titel
Rail Conference, 2003. Proceedings of the 2003 IEEE/ASME Joint
Print_ISBN
0-7803-7741-9
Type
conf
DOI
10.1109/RRCON.2003.1204668
Filename
1204668
Link To Document