Wave Propagation in the Viscoelastic Functionally Graded Cylindrical Shell Based on the First-Order Shear Deformation Theory

Materials (Basel). 2023 Aug 29;16(17):5914. doi: 10.3390/ma16175914.

Abstract

Based on the first-order shear deformation theory (FSDT) and Kelvin-Voigt viscoelastic model, one derives a wave equation of longitudinal guide waves in viscoelastic orthotropic cylindrical shells, which analytically solves the wave equation and explains the intrinsic meaning of the wave propagation. In the numerical examples, the velocity curves of the first few modes for the elastic cylindrical shell are first calculated, and the results of the available literature are compared to verify the derivation and programming. Furthermore, the phase velocity curves and attenuation coefficient curves of the guide waves for a functionally graded (FG) shell are calculated, and the effects of viscoelastic parameters, material gradient patterns, material volume fractions, and size ratios on the phase velocity curves and attenuation curves are studied. This study can be widely used to analytically model the wave propagating in inhomogeneous viscoelastic composite structures and present a theoretical basis for the excellent service performance of composite structures and ultrasonic devices.

Keywords: Kelvin–Voigt viscoelastic model; analytical method; cylindrical shell; first-order shear deformation theory; guide wave; wave attenuation.

Grants and funding

This research was funded by the Natural Science Foundation of China (11402002), the Central Guidance on Local Science and Technology Development Fund of Hebei Province (226Z1201G), the Hebei Provincial Natural Science Foundation of China (A2021409004), the Hebei Provincial Higher Education Science and Technology Research Project—Top Young Talents Project (BJ2019059), and the Hebei Provincial Introduced Oversea Scholars Foundation of China (C20210109). And The APC was funded by the Central Guidance on Local Science and Technology Development Fund of Hebei Province (226Z1201G).