Investigation of the pre-stretch-dependent stability and force output of carbon-fiber-reinforced dielectric elastomer actuators

Anett Endesfelder, Markus Koenigsdorff, J. Mersch, Moritz Ullmann, M. Zimmermann, G. Gerlach
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引用次数: 1

Abstract

Dielectric elastomer actuators (DEAs) have advantageous characteristics and, therefore, their application is widespread in the field of soft robotics. Their properties can be specifically adapted by both the selection of materials and the manufacturing process. Previous research has shown that fiber reinforcement of the structure can significantly enhance the unidirectional motion. In the presented work an actuator consisting of a silicone film as the dielectric, a textile carbon-fiber-reinforced electrode and a carbon black electrode are used. The electrode based on the carbon fibers additionally serves as unidirectional stiffener. Due to this highly anisotropic textile electrode, the DEA barely contracts in fiber direction. However, the active force of the DEA during actuation can be further increased through an initial pre-stretching. The aim of this work is to investigate the influence of the pre-stretching in fiber direction on the actuator performance and the long-term stability of the pre-stretch. The active force of different actuators is recorded with uniaxial tensile tests over several deformation cycles. This enables the investigation of effects deriving both from the manufacturing process and the layer structure of the textile DEA. The acquired data are evaluated and compared to results of an analytical model. To explore the ability of the fibers to maintain the initial pre-stretching of the DEA during activation, digital image correlation as an in-situ imaging technique is applied. It could be shown shown that there is no change in width due to the anisotropy. The results of the investigations are used to control and improve the manufacturing process of the textile DEA.
碳纤维增强介电弹性体作动器的预拉伸稳定性及力输出研究
介电弹性体作动器(DEAs)具有良好的特性,在软机器人领域得到了广泛的应用。它们的性能可以通过材料的选择和制造工艺来特别调整。以往的研究表明,纤维增强结构可以显著增强结构的单向运动。在本工作中,驱动器由硅树脂薄膜作为介质,纺织碳纤维增强电极和炭黑电极组成。基于碳纤维的电极还可以作为单向加强器。由于这种高度各向异性的纺织电极,DEA在纤维方向上几乎没有收缩。然而,在驱动过程中,DEA的主动力可以通过初始预拉伸进一步增加。本文旨在研究纤维方向预拉伸对致动器性能的影响以及预拉伸的长期稳定性。不同致动器的主动力被记录在几个变形周期的单轴拉伸试验中。这使得调查从制造过程和纺织DEA的层结构产生的影响成为可能。对获得的数据进行评估,并与分析模型的结果进行比较。为了探索纤维在激活过程中保持DEA初始预拉伸的能力,应用了数字图像相关作为原位成像技术。可以证明,由于各向异性,宽度没有变化。研究结果可用于控制和改进纺织DEA的生产工艺。
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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