Steel and Composite Structures
Volume 49, Number 4, 2023, pages 361-380
DOI: 10.12989/scs.2023.49.4.361
Influence of flexoelectricity on bending of piezoelectric perforated FG composite nanobeam rested on elastic foundation
Ali Alnujaie, Alaa A. Abdelrahman, Abdulrahman M. Alanasari and Mohamed A. Eltaher
Abstract
A size dependent bending behavior of piezoelectrical flexoelectric layered perforated functionally graded (FG)
composite nanobeam rested on an elastic foundation is investigated analytically. The composite beam is composed of regularly
cutout FG core and two piezoelectric face sheets. The material characteristics is graded through the core thickness by power law
function. Regular squared cutout perforation pattern is considered and closed forms of the equivalent stiffness parameters are
derived. The modified nonlocal strain gradient elasticity theory is employed to incorporate the microstructure as well as
nonlocality effects into governing equations. The Winkler as well as the Pasternak elastic foundation models are employed to
simulate the substrate medium. The Hamiltonian approach is adopted to derive the governing equilibrium equation including
piezoelectric and flexoelectric effects. Analytical solution methodology is developed to derive closed forms for the size
dependent electromechanical as well as mechanical bending profiles. The model is verified by comparing the obtained results
with the available corresponding results in the literature. To demonstrate the applicability of the developed procedure, parametric
studies are performed to explore influences of gradation index, elastic medium parameters, flexoelectric and piezoelectric
parameters, geometrical and peroration parameters, and material parameters on the size dependent bending behavior of
piezoelectrically layered PFG nanobeams. Results obtained revealed the significant effects both the flexoelectric and
piezoelectric parameters on the bending behavior of the piezoelectric composite nanobeams. These parameters could be
controlled to improve the size dependent electromechanical as well as mechanical behaviors. The obtained results and the
developed procedure are helpful for design and manufacturing of MEMS and NEMS.
Key Words
analytical methodology; elastic substrate; functionally grade core; modified nonlocal strain gradient theory; piezoelectric flexoelectric face sheets; size dependent bending
Address
Ali Alnujaie:Mechanical Engineering Department, Faculty of Engineering, Jazan University, P. O. Box 45142, Jazan, Kingdom of Saudi Arabia
Alaa A. Abdelrahman:Mechanical Design & Production Department, Faculty of Engineering, Zagazig University, P.O. Box 44519, Zagazig, Egypt
Abdulrahman M. Alanasari:Department of Mechanical Engineering, Faculty of Engineering, University of Business and Technology, Jeddah, Saudi Arabia
Mohamed A. Eltaher:Mechanical Engineering Department, Faculty of Engineering, King Abdulaziz University, P.O. Box 80204, Jeddah, Saudi Arabia
5Department of Mechanical Design and Production, Faculty of Engineering, Zagazig University, Zagazig, Egypt