Low profile dielectric elastomer actuator system with unibody compliant joint transmission

D. Bruch, I. Naumov, T. Willian, Paul Motzki, S. Seelecke
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Abstract

Dielectric Elastomer Actuators (DEAs) are known for their outstanding properties such as low weight, high energy density and self-sensing capability. Compared to conventional magnetic actuators, they are manufactured from generally inexpensive and widely available polymer materials, making the technology particularly attractive for developing actuator systems that are potentially low-cost and serve a wide range of applications. This advantage can be further enhanced by developing scalable and standardized system designs that use identical parts in order to reduce product variation and enable high volumes in a mass production process. Following this approach, this paper introduces a low-profile and compact linear actuator design, which provides a configurable force and stroke transmission in order to serve different load-profiles without changing shape and dimension of the DEA itself. The design is based on rectangular-shaped, in-plane operating DEAs coupled to a unibody linkage mechanism, which is likewise flat and based on compliant joints and rigid links. A negative rate stiffness mechanism enables to increase the performance output of the actuator system in terms of cyclic converted energy in quasi-static operation. By configuring the lever ratios of the input and output sides accordingly, it can either behave stroke-magnifying or force-magnifying. Thus, as an example, a system with negative and one with positive transmission ratio are realized and characterized with respect to their force and their stroke behavior.
低轮廓介质弹性体驱动器系统与一体柔性关节传动
介电弹性体致动器(dea)以其轻重量、高能量密度和自传感能力等优异性能而闻名。与传统的磁性致动器相比,它们是由普遍廉价和广泛可用的聚合物材料制造的,这使得该技术对于开发潜在低成本和广泛应用的致动器系统特别有吸引力。这一优势可以通过开发可扩展和标准化的系统设计来进一步增强,这些系统设计使用相同的部件,以减少产品的变化,并在大规模生产过程中实现高产量。根据这种方法,本文介绍了一种低轮廓和紧凑的线性执行器设计,该设计提供了可配置的力和行程传递,以便在不改变DEA本身的形状和尺寸的情况下服务于不同的负载剖面。该设计基于矩形的平面内操作dea与一体连杆机构的耦合,该机构同样是平面的,基于柔性关节和刚性连杆。负速率刚度机构能够在准静态运行中增加执行器系统的循环转换能量的性能输出。通过相应地配置输入和输出侧的杠杆比率,它可以表现为冲程放大或力放大。因此,作为一个例子,实现了一个具有负传动比和一个具有正传动比的系统,并对它们的力和行程行为进行了表征。
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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