Skip to main content

Research Repository

Advanced Search

A hierarchy of asymptotic models for a fluid-loaded elastic layer

Kaplunov, Julius; Prikazchikova, Ludmila; Shamsi, Sheeru

Authors

Sheeru Shamsi



Abstract

A hierarchy of asymptotic models governing long-wave low-frequency in-plane motion of a fluid-loaded elastic layer is established. In contrast to a layer with traction-free faces, modelled by Neumann boundary conditions, a fluid-loaded one assumes more involved conditions along the interfaces, dictating a special asymptotic scaling. The latter corresponds to a fluid-borne bending wave, controlled by elastic stiffness of the layer and fluid inertia. In this case, the transverse inertia of the layer and fluid compressibility do not appear at zero-order approximation. The first-order approximation is associated with a Kirchhoff plate, immersed into incompressible fluid. In the studied free vibration setup, the fluid compressibility has to be taken into account only at third order, along with elastic rotary inertia. Transverse shear deformation enters the second-order approximation along with a few other corrections. The conventional impenetrability condition has to be also refined at second order. Dispersion relations corresponding to the developed asymptotic models are compared with the polynomial expansions of the full dispersion relation, obtained from the plane-strain problem of linear elasticity.

Citation

Kaplunov, J., Prikazchikova, L., & Shamsi, S. (in press). A hierarchy of asymptotic models for a fluid-loaded elastic layer. Mathematics and Mechanics of Solids, https://doi.org/10.1177/10812865231201573

Journal Article Type Article
Acceptance Date Aug 28, 2023
Online Publication Date Nov 4, 2023
Deposit Date Nov 20, 2023
Journal Mathematics and Mechanics of Solids
Print ISSN 1081-2865
Electronic ISSN 1741-3028
Publisher SAGE Publications
Peer Reviewed Peer Reviewed
DOI https://doi.org/10.1177/10812865231201573
Keywords Mechanics of Materials, General Materials Science, General Mathematics