scholarly journals Wave propagation across a functionally graded interphase between soft and hard solids: Insight from a dynamic surface elasticity model

2021 ◽  
Vol 151 ◽  
pp. 104380
Author(s):  
Ali Aghaei ◽  
Nicolas Bochud ◽  
Giuseppe Rosi ◽  
Salah Naili
2017 ◽  
Vol 28 (17) ◽  
pp. 2403-2413 ◽  
Author(s):  
Mohammad Arefi ◽  
Ashraf M Zenkour

The higher-order stress components and surface effect are considered in this article for presentation of a nonlocal solution for a functionally graded piezoelectric nanorod. Love rod model is used for longitudinal wave propagation. The mentioned analysis is used to evaluate the governing differential equations of the system and characteristics of wave propagation in assumed nanorod. The model is excited by a two-dimensional electric potential and an initial applied voltage at top layer of rod. The mechanical and electrical properties are assumed variable along the thickness direction of rod. Hamilton’s principle is used to arrive to governing differential equations of the electromechanical system. The effect of some important parameters such as applied voltage and gradation of material properties is studied on the wave characteristics of the rod. Furthermore, the effect of different distributions of electric potential on the phase velocity of the nanorod is evaluated.


Author(s):  
Amir-Reza Asghari Ardalani ◽  
Ahad Amiri ◽  
Roohollah Talebitooti ◽  
Mir Saeed Safizadeh

Wave dispersion response of a fluid-carrying piezoelectric nanotube is studied in this paper utilizing an improved model for piezoelectric materials which capture a new effect known as flexoelectricity in conjunction with the surface elasticity. For this aim, a higher order shear deformation theory is employed to model the problem. Furthermore, strain gradient effect as well as nonlocal effect is taken into consideration throughout using the nonlocal strain gradient theory (NSGT). Surface elasticity is also considered to make an accurate size-dependent formulation. Additionally, a non-compressible and non-viscous fluid is taken into consideration to model the flow effect. The wave propagation solution is then implemented to the governing equations obtained by Hamiltonian’s approach. The phase velocity and group velocity of the nanotube is determined for three wave modes (i.e. shear, longitudinal and bending waves) to study the influence of various involved factors including strain gradient, nonlocality, flexoelectricity and surface elasticity and flow velocity on the wave dispersion curves. Results reveal a considerable effect of the flexoelectric phenomenon on the wave propagation properties especially at a specific domain of the wave number. The size-dependency of this effect is disclosed. Overall, it is found that the flexoelectricity exhibits a substantial influence on wave dispersion properties of the smart fluid-conveying systems. Hence, such size-dependent effect should be considered to achieve exact and accurate knowledge on wave propagation characteristics of the system.


Sign in / Sign up

Export Citation Format

Share Document