Nonlinear vibration and stability of a dielectric elastomer balloon based on a strain-stiffening model
Amin Alibakhshi, Weiqiu Chen, Michel Destrade

TL;DR
This paper investigates the nonlinear vibration and stability of a dielectric elastomer balloon using a strain-stiffening model based on molecular structure, revealing how material properties influence stability and chaotic behavior under electrical loading.
Contribution
It introduces a strain energy model based on molecular structure to analyze dielectric elastomer balloon stability and nonlinear vibrations, highlighting the impact of strain-stiffening effects.
Findings
Strain-stiffening materials enhance stability and reduce chaos.
Molecular structure controls critical voltage and instability.
Early strain-stiffening delays chaotic vibrations.
Abstract
Limiting chain extensibility is a characteristic that plays a vital role in the stretching of highly elastic materials. The Gent model has been widely used to capture this behaviour, as it performs very well in fitting stress-stretch data in simple tension, and involves two material parameters only. Recently, Anssari-Benam and Bucchi [Int. J. Non. Linear. Mech. 2021, 128, 103626] introduced a different form of generalised neo-Hookean model, focusing on the molecular structure of elastomers, and showed that their model encompasses all ranges of deformations, performing better than the Gent model in many respects, also with only two parameters. Here we investigate the nonlinear vibration and stability of a dielectric elastomer balloon modelled by that strain energy function. We derive the deformation field in spherical coordinates and the governing equations by the Euler-Lagrange method,…
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