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Effect of the thickness of the piezoelectric patches on the active control of a thin plate

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This paper presents a numerical study pertaining to on the active vibration control (AVC) of the 3-D rectangle simply supported plate bonded of the piezoelectric sensor/actuator pairs. A LQR controller is designed based on the independent mode space control techniques to stifle the vibration of the system. The change in the thickness of the patches was a clear impact on the control results, and also in the values of the voltage in actuator. The results were established by simulating in ANSYS and MATLAB.
Słowa kluczowe
Rocznik
Strony
1345--1354
Opis fizyczny
Bibliogr. 18 poz., il. kolor., 1 rys., wykr.
Twórcy
autor
  • Faculty of Technology, Mohamed Khieder Universty of Biskra, BP 145 RP, 07000 Biskra, Algeria
autor
  • Faculty of Technology, Mohamed Khieder Universty of Biskra, BP 145 RP, 07000 Biskra, Algeria
Bibliografia
  • [1] Ansys Inc, Release 12.1 Documentation for ANSYS.
  • [2] Benjeddou, A.: Edvances in piezoelectric finite element modeling of adaptive structural elements, a survey, Comput Struct, 76, 1-3, 347-63, 2000.
  • [3] Bruant, I., Proslier, L.: Optimal location of actuators and sensors in active vibration control, Journal of Intelligent Material Systems and Structures, 16, 197-206, 2005.
  • [4] Caruso, G. A.: Critical analysis of electric shunt circuits employed in piezoelectric passive vibration damping, Smart Mater Struct, 10, 1059-1068, 2001.
  • [5] Chopra, I.: Review of state of art of smart structures and integrated systems, AIAA J, 40, 11, 2145-87, 2002
  • [6] Hagood, N. W., Flotow, A.: Damping of structural vibration with piezoelectric materials and passive electrical networks, J Sound Vib, 146, 243-268, 1991.
  • [7] Hu, Z. W.: A review of active vibration control for structures, Journal of Mechanical Strength, 17, 2, 55-60, 1995.
  • [8] Zhang, J., He, L., Wang, E., Gao, R.: A LQR controller design for active vibration control of flexible structures, Workshop on Computational Intelligence and Industrial Application, IEEE Pacific-Asia, 2008.
  • [9] Koko, T. S., Orisamolu, I. R., Smith, M .J., Akpan, U. O.: Finite-element-based design tool for smart composite structures, Proc. SPIE, 3039, 125-34, 1997.
  • [10] Latrach, M. : The LQR control active of smart plate based on the finite element method. Periodica Polytechnica Mechanical Engineering, OnlineFirst, 9499, 2017.
  • [11] Leissa, A. W.: Vibration of plates, NASA SP-160, 1969.
  • [12] Malgaca, L.: Integration of active vibration control methods with finite element models of smart laminated composite structures, Composite Structures, 92, 7, 1651-1663, 2010.
  • [13] Lewis, F., Syrmos, V. L.: Optimal Control, Wiley, New York, 1995.
  • [14] Rao, S, S. Sunar, M.: Analysis of distributed thermopiezoelectric sensors and actuators in advanced intelligent structures, AIAA J, 31, 1280-6, 1993.
  • [15] Srinivasan, A. V., McFarland, D. M.: Smart structures: analysis and design, Cambridge: University Press, 2001.
  • [16] Tzou, H. S., Anderson, G. L.: editors Intelligent structural systems, Solid mechanics and its applications, Dordrecht: Kluwer Academic Publishers, 13, 1992.
  • [17] Vasques, C. M. A., Dias Rodrigues, J.: Active vibration control of smart piezoelectric beams: Comparison of classical and optimal feedback control strategies, Computers and Structures, 84, 1402-1414, 2006.
  • [18] Sethi, V., Song, G.: Multimode Optimal Vibration Control of Flexible Structure using Piezoceramics, International Symposium on Intelligent Control, Taipei, Taiwan, 2004.
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-b7560a76-8a33-424b-a13e-7979e1bbfd78
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