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On the forced vibration of high-order functionally graded nanotubes under the rotation via intelligent modeling

  • Liu, Yang (School of intelligent manufacturing, Changchun Sci-Tech University) ;
  • Wang, Xiaofeng (School of intelligent manufacturing, Changchun Sci-Tech University) ;
  • Liu Li (School of intelligent manufacturing, Changchun Sci-Tech University) ;
  • Wu, Bin (School of intelligent manufacturing, Changchun Sci-Tech University) ;
  • Yang, Qin (School of intelligent manufacturing, Changchun Sci-Tech University)
  • Received : 2021.07.12
  • Accepted : 2022.04.28
  • Published : 2022.07.25

Abstract

The present research investigates the dynamic behavior of a rotating functionally graded (FG) nonlocal cylindrical beam. The cylindrical beam is mathematically modeled via third-order beam theory linked with nonlocal strain gradient theory. The tube structure is made of functionally graded materials composed of Aluminum oxide coated on the Nickel, which the mechanical properties vary in the tube radius direction according to the power law. The bending harmonic force is applied in the tube length middle. The nonlocal spinning equations of the tube are derived via the energy method of the Hamilton principle, and they are solved via a robust numerical procedure for different boundary conditions. The main application of the rotating nanostructures is for the production of small-scale motors and devices and the drug-delivery application, the presented results can help the researcher have a better view regarding the different conditions.

Keywords

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