Effect of displacement control gain on the shape of functionally graded piezoelectric beam using a simple beam theory
Author:
Publisher
Springer Science and Business Media LLC
Subject
Civil and Structural Engineering
Link
https://link.springer.com/content/pdf/10.1007/s42107-022-00463-7.pdf
Reference28 articles.
1. Beheshti-Aval, S. B., & Lezgy-Nazargah, M. J. S. S. (2010). Assessment of velocity–acceleration feedback in optimal control of smart piezoelectric beams. Smart Structures and Systems, 6(8), 921–938.
2. Beheshti-Aval, S. B., & Lezgy-Nazargah, M. (2012). A coupled refined high-order global-local theory and finite element model for static electromechanical response of smart multilayered/sandwich beams. Archive of Applied Mechanics, 82(12), 1709–1752.
3. Beheshti-Aval, S. B., & Lezgy-Nazargah, M. (2013). Coupled refined layerwise theory for dynamic free and forced response of piezoelectric laminated composite and sandwich beams. Meccanica, 48(6), 1479–1500.
4. Beheshti-Aval, S. B., Lezgy-Nazargah, M., Vidal, P., & Polit, O. (2011). A refined sinus finite element model for the analysis of piezoelectric-laminated beams. Journal of Intelligent Material Systems and Structures, 22(3), 203–219.
5. Bendine, K., Boukhoulda, F. B., Nouari, M., & Satla, Z. (2016). Active vibration control of functionally graded beams with piezoelectric layers based on higher order shear deformation theory. Earthquake Engineering and Engineering Vibration, 15(4), 611–620.
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