Steel and Composite Structures
Volume 34, Number 4, 2020, pages 615-623
DOI: 10.12989/scs.2020.34.4.615
Free vibration analysis of functionally graded cylindrical nanoshells resting on Pasternak foundation based on two-dimensional analysis
Mohammad Arefi and Krzysztof Kamil Żur
Abstract
In this paper, free vibration analysis of a functionally graded cylindrical nanoshell resting on Pasternak foundation is presented based on the nonlocal elasticity theory. A two-dimensional formulation along the axial and radial directions is presented based on the first-order shear deformation shell theory. Hamilton\'s principle is employed for derivation of the governing equations of motion. The solution to formulated boundary value problem is obtained based on a harmonic solution and trigonometric functions for various boundary conditions. The numerical results show influence of significant parameters such as small scale parameter, stiffness of Pasternak foundation, mode number, various boundary conditions, and selected dimensionless geometric parameters on natural frequencies of nanoshell.
Key Words
size-dependent natural vibration; functionally graded materials; cylindrical nanoshell; nonlocal parameters; various boundary conditions
Address
Mohammad Arefi: Department of Solid Mechanics, University of Kashan, Kashan 87317-51167, Iran
Krzysztof Kamil Żur: Faculty of Mechanical Engineering, Bialystok University of Technology, Bialystok 15-351, Poland