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31
178. S. Kapuria, M.Y. Yasin, A nonlinear efficient layerwise finite element model for smart piezolaminated composites under strong applied electric field, in Smart Materials and Structures
(2013)
179. S. Kapuria, M.Y. Yasin, Active vibration control of piezolaminated composite plates considering strong electric field nonlinearity. AIAA J. 53(3), 603–616 (2015)
180. M.N. Rao, S. Tarun, R. Schmidt, K.U. Schröder, Finite element modeling and analysis of
piezo-integrated composite structures under large applied electric fields. Smart Mater. Struct.
25, 055044 (2016)
181. L.Q. Yao, J.G. Zhang, L. Lu, M.O. Lai, Nonlinear extension and bending of piezoelectric
laminated plate under large applied field actuation. Smart Mater. Struct. 13, 404–414 (2004)
182. S.Q. Zhang, G.Z. Zhao, S.Y. Zhang, R. Schmidt, X.S. Qin, Geometrically nonlinear FE analysis of piezoelectric laminated composite structures under strong driving electric field. Compos.
Struct. 181, 112–120 (2017)
183. A. Alibeigloo, Free vibration analysis of functionally graded carbon nanotubereinforced composite cylindrical panel embedded in piezoelectric layers by using theory of elasticity. Eur. J.
Mech. A/Solids 44, 104–115 (2014)
184. B.A. Selim, L.W. Zhang, K.M. Liew, Active vibration control of CNT-reinforced composite
plates with piezoelectric layers based on Reddy’s higher-order shear deformation theory.
Compos. Struct. 163, 350–364 (2017)
185. M. Rafiee, J. Yang, S. Kitipornchai, Large amplitude vibration of carbon nanotube reinforced
functionally graded composite beams with piezoelectric layers. Compos. Struct. 96, 716–725
(2013)
186. R. Ansari, T. Pourashraf, R. Gholami, A. Shahabodini, Analytical solution for nonlinear
postbuckling of functionally graded carbon nanotube-reinforced composite shells with piezoelectric layers. Compos. Part B 90, 267–277 (2016)
187. M.A.R. Loja, C.M.M. Soares, J.I. Barbosa, Analysis of functionally graded sandwich plate
structures with piezoelectric skins, using B-spline finite strip method. Compos. Struct. 96,
606–615 (2013)
188. S. Mikaeeli, B. Behjat, Three-dimensional analysis of thick functionally graded piezoelectric
plate using EFG method. Compos. Struct. 154, 591–599 (2016)
189. Z. Su, G. Jin, T. Ye, Electro-mechanical vibration characteristics of functionally graded piezoelectric plates with general boundary conditions. Int. J. Mech. Sci. 138–139, 42–53 (2018)
190. M. Derayatifar, M. Tahani, H. Moeenfard, Nonlinear analysis of functionally graded piezoelectric energy harvesters. Compos. Struct. 182, 199–208 (2017)
191. Y.Q. Wang, Electro-mechanical vibration analysis of functionally graded piezoelectric porous
plates in the translation state, in Acta Astronautica (2018)
192. M. Krommer, H. Irschik, A Reissner-Mindlin-type plate theory including the direct piezoelectric and the pyroelectric effect. Acta Mechanica 141, 51–69 (2000)
193. D.P. Zhang, Y.J. Lei, Z.B. Shen, Thermo-electro-mechanical vibration analysis of piezoelectric nanoplates resting on viscoelastic foundation with various boundary conditions. Int. J.
Mech. Sci. 131–132, 1001–1015 (2017)
194. C. Li, J.J. Liu, M. Cheng, X.L. Fan, Nonlocal vibrations and stabilities in parametric resonance
of axially moving viscoelastic piezoelectric nanoplate subjected to thermo-electro-mechanical
forces. Compos. Part B 116, 153–169 (2017)
195. M. Arefi, A.M. Zenkour, Thermo-electro-mechanical bending behavior of sandwich nanoplate
integrated with piezoelectric face-sheets based on trigonometric plate theory. Compos. Struct.
162, 108–122 (2017)
196. M. Dehghan, M.Z. Nejad, A. Moosaie, Thermo-electro-elastic analysis of functionally graded
piezoelectric shells of revolution: governing equations and solutions for some simple cases.
Int. J. Eng. Sci. 104, 34–61 (2016)
197. A. Alibeigloo, Thermoelastic analysis of functionally graded carbon nanotube reinforced
composite cylindrical panel embedded in piezoelectric sensor and actuator layers. Compos.
Part B 98, 225–243 (2016)
