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Wave characteristics of single-walled fluid-conveying carbon nanotubes subjected to multi-physical fields
Affiliation:1. School of Engineering, University of Liverpool, Liverpool L69 3GH, UK;2. Tribology Research Institute, Southwest Jiaotong University, Chengdu 610031, China;3. Department of Engineering Mechanics, Dalian University of Technology, Dalian 116023, China;4. School of Mechanics and Engineering Sciences, Zhengzhou University, Zhengzhou 450001, China
Abstract:Wave propagation in single-walled carbon nanotubes (SWCNTs) conveying fluids and placed in multi-physical fields (including magnetic and temperature fields) is studied in this paper. The nanotubes are modelled as Timoshenko beams. Based on the nonlocal beam theory, the governing equations of motion are derived using Hamilton's principle, and then solved by Galerkin approach, leading to two second-order ordinary differential equations (ODEs). Numerical simulations are carried out to verify the analytical model proposed in the present study, and determine the influences of the nonlocal parameter, the fluid velocity and flow density, the temperature and magnetic field flux change, and the surrounding elastic medium on the wave behaviour of SWCNTs. The results show that the nonlocal parameter has a considerable influence on dynamic behaviour of the nanotube and the fluid flow inside it. The results also show that the magnetic and temperature fields play an important role on the wave propagation characteristics of SWCNTs.
Keywords:Single-walled carbon nanotubes  Nonlocal Timoshenko beam theory  Wave propagation  Multi-physical fields
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