Title of article :
Wave propagation analysis of magnetoelectrothermoelastic nanobeams using sinusoidal shear deformation beam model and nonlocal strain gradient theory
Author/Authors :
Amiri ، Ahad School of Mechanical Engineering - Iran University of Science and Technology , Masoumi ، Arian School of Mechanical Engineering - Iran University of Science and Technology , Talebitooti ، Roohollah School of Mechanical Engineering - Iran University of Science and Technology , Safizadeh ، Mir Saeed chool of Mechanical Engineering - Iran University of Science and Technology
Abstract :
The main goal of this research is to provide a more detailed investigation of the sizedependent response of magnetoelectrothermoelastic (METE) nanobeams subjected to propagating wave, employing sinusoidal shear deformation beam theory (SSDBT). With the aim to consider the size influences of the structure, the nonlocal strain gradient theory (NSGT) is utilized. Hamilton’s principle within constitutive relations of METE materials is incorporated to derive thegoverning equations. Utilizing Maxwell’s relation and magnetelectric boundary conditions, proper distributions for magnetic and electric potentials along the nanobeam are obtained. Thereafter an exact analysis is used to obtain the axial and flexural dispersion relations of METE nanobeams. In numerical results, detailed investigations of wave dispersion behavior related to three modes are addressed. In addition, a relation is introduced to determine the cutoff frequency of the system. Moreover, the effectiveness of various parametersincluding length scale and nonlocal parameters, nanobeam thickness, and theloadings due to imposed thermoelectromagnetic field on the response ofpropagating wave in METE nanobeams are examined.
Keywords :
wave propagation , Nonlocal and lengthscale parameters , escape frequency , Cutoff wave number , Cutoff Frequency
Journal title :
Journal of Theoretical and Applied Vibration and Acoustics
Journal title :
Journal of Theoretical and Applied Vibration and Acoustics