| نویسندگان | علی قربانپور-محمد مسیبی-فرزاد کلاه دوزان-رضا کلاه چی-مجید جمالی |
| تاریخ انتشار | 2016-7-01 |
| نوع نشریه | الکترونیکی |
| نمایه نشریه | ISI ,SCOPUS |
چکیده مقاله
Damped free vibration of carbon nanotube reinforced composite microplate bounded with piezoelectric sensor and
actuator layers are investigated in this study. For the mathematical modeling of sandwich structure, the refined zigzag
theory is applied. In addition, to present a realistic model, the material properties of system are supposed as viscoelastic
based on Kelvin–Voigt model. Distributions of single-walled carbon nanotubes along the thickness direction of the
viscoelastic carbon nanotube reinforced composite microplate are considered as four types of functionally graded
distribution patterns. The viscoelastic functionally graded carbon nanotube reinforced composite microplate subjected
to electromagnetic field is embedded in an orthotropic visco-Pasternak foundation. Hamilton’s principle is employed to
establish the equations of motion. In order to calculate the frequency and damping ratio of sandwich plate, boundary
condition of plate is assumed as simply-supported and an exact solution is used. The effects of some significant parameters
such as damping coefficient of viscoelastic plates, volume fraction of carbon nanotubes, different types of functionally
graded distributions of carbon nanotubes, magnetic field, and external voltage on the damped free vibration of
system are investigated. Results clarify that considering viscoelastic property for system to achieve accurate results is
essential. Furthermore, the effects of volume fraction and distribution type of carbon nanotubes are remarkable on the
vibration of sandwich plate. In addition, electric and magnetic fields are considerable parameters to control the behavior
of viscoelastic carbon nanotube reinforced composite microplate. It is hoped that the results of this study could be
applied in design of nano/micromechanical sensor and actuator systems.