Ma Guangqiang, Wu Xiaojun, Chen Lijin, Tong Xin, Zhao Weiwei
School of Mechanical and Electrical Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, China.
School of Mechanical and Electronic Engineering, Wuhan University of Technology, Wuhan 430070, China.
Materials (Basel). 2020 Dec 4;13(23):5542. doi: 10.3390/ma13235542.
Dielectric elastomer actuators (DEAs) are an emerging type of soft actuation technology. As a fundamental unit of a DEA, the characteristics of compliant electrodes play a crucial role in the actuation performances of DEAs. Generally, the compliant electrodes can be categorized into uncured and cured types, of which the cured one commonly involves mixing conductive particles into an elastomeric matrix before curing, thus demonstrating a better long-term performance. Along with the increasing proportion of conductive particles, the electrical conductivity increases at the cost of a stiffer electrode and lower elongation at break ratio. For different DEA applications, it can be more desirable to minimize the electrode stiffness or to maximize its conductivity. In examination of the papers published in recent years, few works have characterized the effects of elastomeric electrodes on the outputs of DEAs, or of their optimizations under different application scenarios. In this work, we propose an experimental framework to characterize the performances of elastomeric electrodes with different formulas based on the two key parameters of stiffness and conductivity. An optimizing method is developed and verified by two different application cases (e.g., quasi-static and dynamic). The findings and the methods developed in this work can offer potential approaches for developing high-performance DEAs.
介电弹性体驱动器(DEA)是一种新兴的软驱动技术。作为DEA的基本单元,柔顺电极的特性对DEA的驱动性能起着至关重要的作用。通常,柔顺电极可分为未固化型和固化型,其中固化型通常是在固化前将导电颗粒混入弹性体基质中,因此具有更好的长期性能。随着导电颗粒比例的增加,电导率提高,但代价是电极变硬,断裂伸长率降低。对于不同的DEA应用,更希望将电极刚度降至最低或使其电导率最大化。在查阅近年来发表的论文时,很少有研究描述弹性体电极对DEA输出的影响,或其在不同应用场景下的优化情况。在这项工作中,我们提出了一个实验框架,基于刚度和电导率这两个关键参数来表征不同配方的弹性体电极的性能。开发了一种优化方法,并通过两种不同的应用案例(如准静态和动态)进行了验证。这项工作中得出的研究结果和开发的方法可为开发高性能DEA提供潜在的途径。