揭示对抗性纯剪切介电弹性体致动器中的孤立共振响应

Soft science Pub Date : 2021-05-21 DOI:10.20517/ss.2021.01
C. Cao, T. Hill, Bo Li, Guimin Chen, Lei Wang, Xing Gao
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引用次数: 11

摘要

电介质弹性体致动器(DEA)是一种新兴的软致动器,具有大的致动应变、高能量密度和固有柔顺性等吸引人的特点,是新型仿生和软机器人应用所需要的。由于其固有的弹性,当由频率与DEA系统的固有频率匹配的交流电压激励时,DEA可以表现出使振荡幅度最大的谐振响应。硅弹性体因其降低的粘性阻尼而被广泛用于共振致动应用,因此与VHB弹性体相比具有更好的动态性能。然而,硅弹性体采用的低预拉伸比可能会在高振幅振荡中导致膜的张力损失,但其对DEA动态响应的影响尚不完全清楚。利用数值动力学模型,研究了张力损失对拮抗纯剪切DEAs频率响应的影响。在参数强迫DEA系统中,首次发现了与主响应分支分离的次谐波频率响应曲线,这导致了振荡幅度的突然跳跃,严重威胁了DEA系统的动态稳定性和可控性。采用全局分析方法,对孤立响应曲线对激励分量和系统物理参数的演化进行了数值研究。
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Uncovering isolated resonant responses in antagonistic pure-shear dielectric elastomer actuators
The dielectric elastomer actuator (DEA) is one type of emerging soft actuator that has the attractive features of large actuation strains, high energy density, and inherent compliance, which is desirable for novel bio-inspired and soft robotic applications. Due to their inherent elasticity, when stimulated by an alternating current voltage with a frequency matching the natural frequency of the DEA system, the DEAs can exhibit resonant responses which maximize the oscillation amplitude. Silicone elastomers are widely utilized for resonant actuation applications for their reduced viscous damping hence better dynamic performance compared to VHB elastomers. However, the low pre-stretch ratios adopted by silicone elastomers could induce loss-of-tension of the mem-branes in high amplitude oscillations, yet its effects on the dynamic responses of a DEA are not fully understood. By using a numerical dynamic model, this work studies the effects of the loss-of-tension on the frequency response of the antagonistic pure-shear DEAs. A subharmonic frequency response curve isolated from the main response branch is uncovered for the first time in a parametrically forced DEA system, which causes a sudden jump in the oscillation amplitude and serves as a severe threat to the dynamic stability and controllability of the DEA system. By using a global analysis method, the evolution of the isolated response curve against the excitation components and system physical parameters is also investigated numerically.
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