Acoustoelastic analysis of soft viscoelastic solids with application to pre-stressed phononic crystals
Harold Berjamin, Riccardo De Pascalis

TL;DR
This paper develops an acoustoelastic framework for soft viscoelastic solids, revealing how pre-stress and viscoelastic dissipation influence wave propagation and band gap properties in phononic crystals.
Contribution
It introduces a novel small-on-large acoustoelasticity approach for nonlinear viscoelastic solids, incorporating stress-like memory variables and applying it to phononic crystal analysis.
Findings
Viscoelastic dissipation shifts band gap frequencies.
Pre-stress affects wave dispersion and band gap width.
Wave propagation in soft solids can be tuned via static pre-strain.
Abstract
The effective dynamic properties of specific periodic structures involving rubber-like materials can be adjusted by pre-strain, thus facilitating the design of custom acoustic filters. While nonlinear viscoelastic behaviour is one of the main features of soft solids, it has been rarely incorporated in the study of such phononic media. Here, we study the dynamic response of nonlinear viscoelastic solids within a 'small-on-large' acoustoelasticity framework, that is we consider the propagation of small amplitude waves superimposed on a large static deformation. Incompressible soft solids whose behaviour is described by the Fung-Simo quasi-linear viscoelasticy theory (QLV) are considered. We derive the incremental equations using stress-like memory variables governed by linear evolution equations. Thus, we show that wave dispersion follows a strain-dependent generalised Maxwell rheology.…
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