DocumentCode :
1958817
Title :
Feedback control method based on servomechanism speed estimating and processing to reduce residual vibration
Author :
Lindr, David ; Richter, A. ; Rydlo, Pavel
Author_Institution :
Centre for Nanomater., Adv. Technol. & Innovations, Tech. Univ. of Liberec, Liberec, Czech Republic
fYear :
2013
fDate :
24-26 June 2013
Firstpage :
1
Lastpage :
6
Abstract :
The paper presents a functional method for suppression of the two-mass system residual vibrations. The vibrations are excited due to the common effect of torsion plasticity and large moment of inertia of kinematical chain components. The described strategy is based on a mathematical model of servomechanism which is predicting the actual speed of the kinematical chain end-point. The estimated speed of the endpoint is consequently subtracted from the internally measured speed at the motor shaft and by means of weighting and phase shifting there is computed the correction signal which is ready to be used in conventional control structure and in this way to effectively damp the residual vibrations of the kinematical chain end-point. The method functionality was tested first in the numerical simulation of the servomechanism mathematical model and after that it was integrated into the existing cascade structure of the standard servo control unit Siemens Sinamics S120 and verified experimentally on the real system. The result both of the simulations and experiments on the real device, shown in the final part of the article, demonstrate the ability of this method to effectively damp the residual vibrations of the mechanism end-point.
Keywords :
damping; feedback; plasticity; servomechanisms; shafts; torsion; velocity control; vibration control; Siemens Sinamics S120; cascade structure; control structure; correction signal; damping; feedback control method; functional method; internally measured speed; kinematical chain components; kinematical chain end-point speed estimation; moment of inertia; motor shaft; numerical simulation; phase shifting; residual vibration reduction; servo control unit; servomechanism mathematical model; servomechanism speed estimation; torsion plasticity; two-mass system residual vibration suppression; vibration excitation; weighting; Damping; Mathematical model; Permanent magnet motors; Servomechanisms; Shafts; Standards; Vibrations; PMSM; control structure; feedback method; two-mass system; vibration suppression;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electronics, Control, Measurement, Signals and their application to Mechatronics (ECMSM), 2013 IEEE 11th International Workshop of
Conference_Location :
Toulouse
Type :
conf
DOI :
10.1109/ECMSM.2013.6648941
Filename :
6648941
Link To Document :
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