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用于介电弹性体致动器的对齐纤维电极的计算机模拟优化

In silico optimization of aligned fiber electrodes for dielectric elastomer actuators.

作者信息

Firoozan Mohammadreza, Baniassadi Majid, Baghani Mostafa, Chortos Alex

机构信息

School of Mechanical Engineering, Purdue University, West Lafayette, USA.

School of Mechanical Engineering, University of Tehran, Tehran, Iran.

出版信息

Sci Rep. 2024 Feb 27;14(1):4703. doi: 10.1038/s41598-024-54931-y.

Abstract

Dielectric elastomer actuators (DEAs) exhibit fast actuation and high efficiencies, enabling applications in optics, wearable haptics, and insect-scale robotics. However, the non-uniformity and high sheet resistance of traditional soft electrodes based on nanomaterials limit the performance and operating frequency of the devices. In this work, we computationally investigate electrodes composed of arrays of stiff fiber electrodes. Aligning the fibers along one direction creates an electrode layer that exhibits zero stiffness in one direction and is predicted to possess high and uniform sheet resistance. A comprehensive parameter study of the fiber density and dielectric thickness reveals that the fiber density primary determines the electric field localization while the dielectric thickness primarily determines the unit cell stiffness. These trends identify an optimal condition for the actuation performance of the aligned electrode DEAs. This work demonstrates that deterministically designed electrodes composed of stiff materials could provide a new paradigm with the potential to surpass the performance of traditional soft planar electrodes.

摘要

介电弹性体致动器(DEA)具有快速致动和高效率的特点,可应用于光学、可穿戴触觉和昆虫尺度机器人技术等领域。然而,基于纳米材料的传统软电极的不均匀性和高面电阻限制了器件的性能和工作频率。在这项工作中,我们通过计算研究了由刚性纤维电极阵列组成的电极。将纤维沿一个方向排列会形成一个电极层,该电极层在一个方向上表现出零刚度,并且预计具有高且均匀的面电阻。对纤维密度和介电厚度进行的全面参数研究表明,纤维密度主要决定电场定位,而介电厚度主要决定单位单元刚度。这些趋势确定了对齐电极DEA致动性能的最佳条件。这项工作表明,由刚性材料确定性设计的电极可以提供一种新的范例,有可能超越传统软平面电极的性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df0d/10897417/ece010bb9c1a/41598_2024_54931_Fig1_HTML.jpg

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