DocumentCode :
158641
Title :
Time optimal semiactive vibration damping of a mechanical oscillator with variable damping coefficient
Author :
Caruso, Giovanni ; Galeani, S. ; Menini, Laura
Author_Institution :
ITC, Italy
fYear :
2014
fDate :
16-19 June 2014
Firstpage :
1237
Lastpage :
1242
Abstract :
In this paper the semiactive vibration control of a single degree of freedom oscillator is considered. The oscillator comprises a magnetic viscous damper, providing a damping force which can be easily changed in real time. A semiactive control law acting on this parameter is developed, with the aim of damping as fast as possible the free oscillations of the structure. The application of the Pontryagin minimum principle formally proves that, if the goal is to reach in minimum time a small invariant set around the origin (that is, the rest position), the optimal control law for the considered bilinear system consists of a switching (bang-bang) feedback, operating at either the lowest or the highest available level of the damping force. Simulation results are presented, showing that the proposed vibration control scheme always outperforms a benchmark case of a mechanical oscillator with constant damping coefficient equal to the critical value.
Keywords :
bang-bang control; damping; force control; maximum principle; vibration control; Pontryagin minimum principle; bang-bang feedback; constant damping coefficient; damping force; magnetic viscous damper; mechanical oscillator; optimal control law; semiactive vibration control; switching feedback; time optimal semiactive vibration damping; variable damping coefficient; Damping; Magnetomechanical effects; Oscillators; Shock absorbers; Switches; Trajectory;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control and Automation (MED), 2014 22nd Mediterranean Conference of
Conference_Location :
Palermo
Print_ISBN :
978-1-4799-5900-6
Type :
conf
DOI :
10.1109/MED.2014.6961545
Filename :
6961545
Link To Document :
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