Electrical Elements in Reduction of Mechanical Vibrations

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This work presents methods of reduction of the vibration of mechanical systems by means of active elements as well as examples of implementation of active reduction of vibration by means of electrical elements [. This work also describes a structural and parametric synthesis, which can be defined as the design of systems meeting specific requirements. These requirements refer to the frequency values of the systems vibration. The presented approach i.e. a non-classical synthetic method applied in designing mechanical systems, one (as early as at the design and construction stage) may verify future systems [1-. This work presents the description of vibration reduction methods. The most popular methods are passive, active and semi-active. An important aspect of this work is the presentation of several possibilities of the physical implementation of active subsystems. In examples active subsystems consisted of the following electric elements is coil with a movable core. In this work is presents influence of electrical subsystem to basic mechanical system. Designer should analyse the resultant systems and investigate the interaction between the subsystems and the basic system [4-.

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657-661

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August 2013

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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[1] K. Białas, Mechanical and electrical elements in reduction of vibrations, Journal of Vibroengineering, 14, 1 (2012) pp.123-128.

Google Scholar

[2] K. Białas, Passive and Active Elements in Reduction of Vibrations of Torsional Systems, Solid State Phenomena, 164 (2010) pp.260-264.

DOI: 10.4028/www.scientific.net/ssp.164.260

Google Scholar

[3] A. Buchacz, D. Gałęziowski, Synthesis as designing of mechatronic vibrating mixed systems, Journal of Vibroengineering, 14, 2 (2012) pp.553-558.

Google Scholar

[4] K. Białas, Mechanical Subsystem as Implementation of Active Reduction of Vibration, Solid State Phenomena, Mechatronic Systems and Materials IV (2013) pp.657-662.

DOI: 10.4028/www.scientific.net/ssp.198.657

Google Scholar

[5] A. Sękala, J. Świder, Hybrid graphs in modelling and analysis of discrete–continuous mechanical systems, Journal of Materials Processing Technology, Volumes 164-165, Complete Elsevier, 2005, pp.1436-1443.

DOI: 10.1016/j.jmatprotec.2005.02.044

Google Scholar

[6] A. Buchacz, M. Płaczek, The analysis of a composite beam with piezoelectric actuator based on the approximate method, Journal of Vibroengineering, 14, 1 (2012) pp.111-116.

Google Scholar

[7] A. Buchacz, A. Wróbel, Computer-Aided Analysis of Piezoelectric Plates, Solid State Phenomena, 164 (2010) pp.239-242.

DOI: 10.4028/www.scientific.net/ssp.164.239

Google Scholar

[8] K. Jamroziak, M. Kosobudzki, Determining the torsional natural frequency of underframe of off-road vehicle with use of the procedure of operational modal analysis, Journal of Vibroengineering, 2012, 14, 2, pp.472-476.

Google Scholar

[9] A. Buchacz, M. Płaczek, A. Wróbel, Control of characteristics of mechatronic systems using piezoelectric materials, Journal of Theoretical and Applied Mechanics, 51 (2013), pp.225-234.

Google Scholar