Title of article :
Theoretical analysis on nonlinear vibration of fluid flow in single-walled carbon nanotube
Author/Authors :
Valipour, P Department of Textile and Apparel - Islamic Azad University Qaemshahr , Ghasemi, S. E Young Reseachers and Elite Club - Islamic Azad University Sari , Khosravani, Mohammad Reza Chair of Solid Mechanics - University of Siegen , Ganji, D. D Department of Mechanical Engineering - Babol University of Technology
Abstract :
In this study, the concept of nonlocal continuum theory is used to characterize the nonlinear vibration of an embedded single-walled carbon nanotube. The Pasternak-type model is employed to simulate the interaction of the SWNTs. The parameterized perturbation method is used to solve the corresponding nonlinear differential equation. The effects of the vibration amplitude, flow velocity, nonlocal parameter, and stiffness of the medium on the nonlinear frequency variation are presented. The result shows that by increasing the Winkler constant, the nonlinear frequency decreases, especially for low
vibration amplitudes. In addition, it is resulted that influence of the nonlocal parameter is greater at higher flow velocities in comparison with lower flow velocities.
Keywords :
Theoretical analysis , Single-walled carbon nanotube , SWCNT , Parameterized perturbation method , Fluid flow , Nonlinear vibration
Journal title :
Astroparticle Physics