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A computational framework for incompressible electromechanics based on convex multi-variable strain energies for geometrically exact shell theory

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TLDR
In this paper, a new computational framework for the analysis of incompressible Electro Active Polymer (EAP) shells subjected to large strains and large electric fields is presented, based on a rotationless description of the kinematics of the shell, enhanced with extra degrees of freedom corresponding to the thickness stretch and the hydrostatic pressure.
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This article is published in Computer Methods in Applied Mechanics and Engineering.The article was published on 2017-04-15 and is currently open access. It has received 15 citations till now. The article focuses on the topics: Shell (structure) & Hydrostatic pressure.

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Nonlinear higher-order shell theory for incompressible biological hyperelastic materials

TL;DR: In this paper, a geometrically nonlinear theory for circular cylindrical shells made of incompressible hyperelastic materials is developed, which is higher-order in both shear and thickness deformations.
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A curvilinear high order finite element framework for electromechanics: From linearised electro-elasticity to massively deformable dielectric elastomers

TL;DR: In this paper, a high-order finite element implementation of the convex multi-variable electro-elasticity for large deformations large electric fields analyses and its particularisation to the case of small strains through a staggered scheme is presented.
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Aspects of computational homogenization in magneto-mechanics: Boundary conditions, RVE size and microstructure composition

TL;DR: In this article, the behavior of heterogeneous magnetorheological composites subjected to large deformations and external magnetic fields is studied and different types of boundary conditions based on the primary variables of the magneto-elastic enthalpy and internal energy functionals are applied to solve the problem at the micro-scale.
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A high performance data parallel tensor contraction framework: Application to coupled electro-mechanics

TL;DR: Domain-aware expression templates combined with SIMD instructions are shown to provide a significant speed-up over the classical low-level style programming techniques.
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An energy–momentum time integration scheme based on a convex multi-variable framework for non-linear electro-elastodynamics

TL;DR: A new one-step second order accurate energy–momentum (EM) preserving time integrator for reversible electro-elastodynamics is shown to be extremely useful for the long-term simulation of electroactive polymers (EAPs) undergoing massive strains and/or electric fields.
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Journal ArticleDOI

A variational approach for materially stable anisotropic hyperelasticity

TL;DR: In this article, an anisotropic stored energy function which satisfies a priori the Legendre-Hadamard condition was proposed, which is strongly related to the material stability of the constitutive equations.
Journal ArticleDOI

Numerical modelling of non-linear electroelasticity

TL;DR: In this paper, a variational formulation of non-linear electroelasticity is proposed and the finite element method is employed to solve the nonlinear electro-mechanical coupling problem.
Journal ArticleDOI

Instabilities in multilayered soft dielectrics

TL;DR: In this paper, the authors investigated the influence of electromechanical finite deformations on the stability of multilayered soft dielectrics under plane-strain conditions, and provided a detailed picture of the different possible failure modes.
Journal ArticleDOI

Consistent ocean wave energy harvesting using electroactive polymer (dielectric elastomer) artificial muscle generators

TL;DR: In this paper, a simple scale model of EPAM-based wave energy harvesting system was tested in a wave tank over a range of wave periods from 0.7 to 3 s and wave heights from 2 cm to 6 cm.
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Q1. What have the authors contributed in "A computational framework for incompressible electromechanics based on convex multi-variable strain energies for geometrically exact shell theory" ?

In this paper, a new computational framework for the analysis of incompressible Electro Active Polymer ( EAP ) shells subjected to large strains and large electric fields is presented. Two novelties are incorporated in this work. First, the variational and constitutive frameworks developed by the authors in recent publications [ 1–4 ] in the context of three-dimensional electromechanics are particularised/degenerated to the case of geometrically exact shell theory. The proposed formulation follows a rotationless description of the kinematics of the shell, enhanced with extra degrees of freedom corresponding to the thickness stretch and the hydrostatic pressure, critical for the consideration of incompressibility. More specifically, convex multi-variable ( three-dimensional ) constitutive models, complying with the ellipticity condition and hence, satisfying material stability for the entire range of deformations and electric fields, Corresponding author: r. ortigosa @ swansea. Different approaches are investigated for the interpolation of these extra fields and that of the electric potential across the thickness of the shell. 

Moreover, the kinematics of the shell allows for the possibility of compression and stretch across the thickness of the shell [ 17 ], crucial for the consideration of incompressible behaviour. Two approaches have been considered for the interpolation of the electric potential across the thickness of the shell.