Advances in Nano Research
Volume 9, Number 3, 2020, pages 157-172
DOI: 10.12989/anr.2020.9.3.157
Size dependent axial free and forced vibration of carbon nanotube via different rod models
Farshad Khosravi, Mahdi Simyari, Seyed A. Hosseini and Abdelouahed Tounsi
Abstract
The aim of this present research is the effect of the higher-order terms of the governing equation on the forced longitudinal vibration of a nanorod model and making comparisons of the results with classical nonlocal elasticity theory. For this purpose, the free axial vibration along with forced one under the two various linear and harmonic axial concentrated forces in zigzag Single-Walled Carbon Nanotube (SWCNT) are analyzed dynamically. Three various theories containing the classical theory, which is called Eringen's nonlocal elasticity, along with Rayleigh and Bishop theories (higher-order theories) are established to justify the nonlocal behavior of constitutive relations. The governing equation and the related boundary conditions are derived from Hamilton's principle. The assumed modes method is adopted to solve the equation of motion. For the free axial vibration, the natural frequencies are calculated for the various values of the nonlocal parameter only based on Eringen's theory. The effects of the nonlocal parameter, thickness, length, and ratio of the excitation frequency to the natural frequency over time in dimensional and non-dimensional axial displacements are investigated for the first time.
Key Words
forced vibration; Bishop theory; Rayleigh theory; carbon nanotube; axial vibration; assumed modes method
Address
(1) Farshad Khosravi:
Department of Aerospace Engineering, K.N. Toosi University of Technology, Tehran, Iran
(2) Mahdi Simyari:
Department of Mechanical Engineering, University of Tehran, Tehran, Iran
(3) Seyed A. Hosseini:
Department of Industrial, Mechanical and Aerospace Engineering, Buein Zahra Technical University, Buein Zahra, Qazvin, Iran
(4) Abdelouahed Tounsi:
Yonsei Frontier Lab, Yonsei University, Seoul, Korea