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Numerical study on the electromechanical behavior of dielectric elastomer with the influence of surrounding medium

机译:介电弹性体具有围绕介质影响的介电弹性体电机电行为的数值研究

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摘要

The considerable electric-induced shape change, together with the attributes of lightweight, high efficiency, and inexpensive cost, makes dielectric elastomer, a promising soft active material for the realization of actuators in broad applications. Although, a number of prototype devices have been demonstrated in the past few years, the further development of this technology necessitates adequate analytical and numerical tools. Especially, previous theoretical studies always neglect the influence of surrounding medium. Due to the large deformation and nonlinear equations of states involved in dielectric elastomer, finite element method (FEM) is anticipated; however, the few available formulations employ homemade codes, which are inconvenient to implement. The aim of this work is to present a numerical approach with the commercial FEM package COMSOL to investigate the nonlinear response of dielectric elastomer under electric stimulation. The influence of surrounding free space on the electric field is analyzed and the corresponding electric force is taken into account through an electric surface traction on the circumstances edge. By employing Maxwell stress tensor as actuation pressure, the mechanical and electric governing equations for dielectric elastomer are coupled, and then solved simultaneously with the Gent model of stain energy to derive the electric induced large deformation as well as the electromechanical instability. The finite element implementation presented here may provide a powerful computational tool to help design and optimize the engineering applications of dielectric elastomer.
机译:相当大的电诱导的形状变化,与轻质,高效率和廉价成本的属性一起制造介电弹性体,这是一个有希望的软活性材料,用于实现广泛应用中的致动器。虽然,过去几年已经证明了许多原型设备,但该技术的进一步发展需要足够的分析和数值工具。特别是,以前的理论研究总是忽视周围媒体的影响。由于介电弹性体中涉及的状态的大变形和非线性方程,预期有限元法(FEM);然而,少数可用的配方采用自制代码,这是不方便实施的。本作作品的目的是提出一种具有商业有限元包COMSOL的数值方法,以研究电刺激下介电弹性体的非线性响应。分析了围绕自由空间对电场的影响,并通过电气表面牵引地考虑了相应的电力。通过采用MaxWell Regress Tensor作为致动压力,介电弹性体的机械和电气控制方程耦合,然后与污渍能量的GENT模型同时解决,从而导出电诱导的大变形以及机电不稳定。这里提出的有限元件可以提供强大的计算工具,以帮助设计和优化介电弹性体的工程应用。

著录项

  • 作者

    Kun Jia; Tongqing Lu;

  • 作者单位
  • 年度 2016
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  • 原文格式 PDF
  • 正文语种 eng
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