Effects of microstructure and liquid loading on velocity dispersion of leaky Rayleigh waves at liquid–solid interface

Author:

Sharma Vikas1,Kumar Satish2

Affiliation:

1. Department of Mathematics, Lovely Professional University, Phagwara, Punjab 144411, India.

2. School of Mathematics, Thapar University, Patiala, Punjab 147004, India.

Abstract

Inner atomic interactions at the micro scale produce new effects that cannot be accounted for by the classical theory of elasticity. To study the impact of the microstructures of the material, generalized continuum theories involving additional microstructural material parameters are preferred. One such microcontinuum theory involving an additional material parameter called internal characteristic length (l) is a consistent couple stress theory. The study of leaky Rayleigh waves generated at the interface of solid half-space with liquid layer is of great importance for quick scanning and imaging of large civil engineering structures. The problem of leaky Rayleigh waves propagating in elastic half-space under liquid loading has been studied in the context of this consistent couple stress theory. Dispersion equations are obtained by developing the mathematical model of the problem. Phase velocity of leaky Rayleigh waves is studied for three different values of characteristic length parameter (l), which is of the order of internal cell size of the material. Effects of thickness of liquid layer are also studied on the phase velocity profiles.

Publisher

Canadian Science Publishing

Subject

General Physics and Astronomy

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