Finite bending and pattern evolution of the associated instability for a dielectric elastomer slab
Yipin Su, Bin Wu, Weiqiu Chen, Michel Destrade

TL;DR
This paper analyzes the finite bending behavior and buckling patterns of dielectric elastomer slabs under voltage and compression, revealing how electrical and mechanical loads influence instability and pattern formation.
Contribution
It develops a comprehensive nonlinear electro-elasticity framework for predicting buckling and pattern evolution in dielectric slabs under combined loading conditions.
Findings
Voltage destabilizes bending stability.
Axial load effects are complex and can induce competing instabilities.
Coexistence of circumferential and axial patterns observed.
Abstract
We investigate the finite bending and the associated bending instability of an incompressible dielectric slab subject to a combination of applied voltage and axial compression, using nonlinear electro-elasticity theory and its incremental version. We first study the static finite bending deformation of the slab. We then derive the three-dimensional equations for the onset of small-amplitude wrinkles superimposed upon the finite bending. We use the surface impedance matrix method to build a robust numerical procedure for solving the resulting dispersion equations and determining the wrinkled shape of the slab at the onset of buckling. Our analysis is valid for dielectrics modeled by a general free energy function. We then present illustrative numerical calculations for ideal neo-Hookean dielectrics. In that case, we provide an explicit treatment of the boundary value problem of the…
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Taxonomy
TopicsDielectric materials and actuators · Advanced Sensor and Energy Harvesting Materials · Vibration Control and Rheological Fluids
