Steel and Composite Structures
Volume 38, Number 1, 2021, pages 47-66
DOI: 10.12989/scs.2021.38.1.047
The influence of graphene platelet with different dispersions on the vibrational behavior of nanocomposite truncated conical shells
Majid Khayat, Abdolhossein Baghlani, Seyed Mehdi Dehghan and Mohammad Amir Najafgholipour
Abstract
This work addresses the free vibration analysis of Functionally Graded Porous (FGP) nanocomposite truncated conical shells with Graphene PLatelet (GPL) reinforcement. In this study, three different distributions for porosity and three different dispersions for graphene platelets have been considered in the direction of the shell thickness. The Halpin–Tsai equations are used to find the effective material properties of the graphene platelet reinforced materials. The equations of motion are derived based on the higher-order shear deformation theory and Sanders's theory. The Fourier Differential Quadrature (FDQ) technique is implemented to solve the governing equations of the problem and to obtain the natural frequencies of the truncated conical shell. The combination of FDQ with higher-order shear deformation theory allows a very accurate prediction of the natural frequencies. The precision and reliability of the proposed method are verified by the results of literature. Moreover, a wide parametric study concerning the effect of some influential parameters, such as the geometrical parameters, porosity distribution, circumferential wave numbers, GPLs dispersion as well as boundary restraint conditions on free vibration response of FGP-GPL truncated conical shell is also carried out and investigated in detail.
Key Words
free vibration; fourier differential quadrature; functionally graded material; graphene platelet reinforcement; higher-order shear deformation theory; truncated conical shell
Address
Majid Khayat, Abdolhossein Baghlani, Seyed Mehdi Dehghan
and Mohammad Amir Najafgholipour: Department of Civil and Environmental Engineering, Shiraz University of Technology, Shiraz, Iran