Influence of the active-to-passive area ratio on the electrically induced strain of a fiber-reinforced dielectric elastomer actuator

H. Liebscher, Anett Endesfelder, Markus Koenigsdorff, J. Mersch, M. Zimmermann, G. Gerlach
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Abstract

There is an increasing interest to use novel elastomers with inherent or modified advanced dielectric and mechanical properties, as components of dielectric elastomer actuators (DEA). This requires corresponding techniques to assess their electromechanical performance. One performance criterion is the electrically induced deformation of the active electrode area. In this work, a rectangular DEA is used to investigate the influence of the ratio between the active electrode and the passive area on the actuator deformation. For this purpose, a dielectric silicone film is bonded on one surface to a unidirectional carbon fiber fabric. Thereby, highly anisotropic mechanical properties are implemented. When strains are applied perpendicular to the fiber direction, the composite hardly contracts in the fiber direction due to the superior stiffness of the fibers. In addition, the conductive fiber structure also acts as a highly anisotropic compliant electrode. By application of a second paste-like electrode onto the silicone film a DEA is created that operates in a pure shear configuration. This assembly enables the modification of the active-to-passive area ratio and the investigation of its effect on the actuator deformation. Image-based measurements are used to determine the strain of the active electrode area. The experimental results are compared to a lumped-parameter model that considers the electromechanical properties of the fiber-reinforced DEA. In summary, the ratio of the active-to-passive area has a significant influence on the measured deformation. Especially for novel actuator materials that do not exhibit large strains, an active-to-passive ratio of 50 % proves to be particularly advantageous.
主动被动面积比对纤维增强介电弹性体作动器电致应变的影响
人们对使用具有固有或改良的先进介电和机械性能的新型弹性体作为介电弹性体致动器(DEA)的组成部分越来越感兴趣。这需要相应的技术来评估其机电性能。一个性能标准是电致活性电极区域的变形。本文采用矩形DEA研究了主动电极面积与被动电极面积之比对致动器变形的影响。为此,将介电硅薄膜粘合在单向碳纤维织物的一个表面上。因此,实现了高度各向异性的力学性能。当应变垂直于纤维方向施加时,由于纤维的优越刚度,复合材料几乎不会在纤维方向上收缩。此外,导电纤维结构还可作为高度各向异性的柔性电极。通过在硅胶薄膜上应用第二个膏状电极,创建了一个DEA,其在纯剪切配置中运行。该组件能够修改主动与被动面积比,并研究其对致动器变形的影响。基于图像的测量用于确定活性电极区域的应变。将实验结果与考虑纤维增强DEA机电性能的集总参数模型进行了比较。综上所述,主被动面积比对测量变形有显著影响。特别是对于不表现出大应变的新型执行器材料,50%的主动被动比被证明是特别有利的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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