Wei Shuzhen, Ghosh Tushar K
Department of Textile Engineering, Chemistry and Science, Fiber and Polymer Science Program, North Carolina State University, Raleigh, North Carolina, USA.
Soft Robot. 2022 Oct;9(5):900-906. doi: 10.1089/soro.2020.0214. Epub 2021 Nov 2.
Nature has plenty of imitable examples of bistable thin structures that can actuate in response to mechanical and environmental stimuli, such as touch, light, and moisture. Scientists and engineers have used these as models to develop real-world systems with enhanced shape stability, energy efficiency, and power output. The bistable leaf of the Venus Flytrap (VFT) has a uniquely simple structure that enables exquisite actuation to trap the prey instantly. In this study, we present a strategy, inspired and derived from the VFT, which incorporates dielectric elastomer (DE) layers in a bistable actuator capable of reversible snapping through electrical stimulation. The trilayered laminated actuator is composed of two prestrained layers and a strain-limiting middle layer. The balance between elastic energy and bending energy of the laminates results in bistable shapes. We explore a broad design space of the bistable architecture through analysis and experiments to validate the fabrication parameters. The rapid snap-through between the two stable configurations is activated by a voltage pulse applied on the DE layers that change the laminate's strain field. Whereas a high electric field is used as the actuation trigger, the self-stabilization characteristic of the bistable structure obviates the need for continuous voltage supply. Finally, we recommended a new method of flow control by modulating porosity on curved surfaces through operating bistable dielectric elastomer actuators as binary valves.
自然界中有许多可模仿的双稳态薄结构实例,它们能够响应机械和环境刺激(如触摸、光线和湿度)而产生驱动作用。科学家和工程师已将这些实例用作模型,来开发具有更高形状稳定性、能源效率和功率输出的现实世界系统。捕蝇草(VFT)的双稳态叶片具有独特的简单结构,能够实现精准驱动,瞬间捕获猎物。在本研究中,我们提出了一种受捕蝇草启发并源自捕蝇草的策略,该策略在双稳态致动器中纳入了介电弹性体(DE)层,该致动器能够通过电刺激实现可逆的快速弯折。三层叠层致动器由两个预应变层和一个应变限制中间层组成。层压板的弹性能量和弯曲能量之间的平衡导致了双稳态形状。我们通过分析和实验探索双稳态结构的广泛设计空间,以验证制造参数。施加在DE层上的电压脉冲会改变层压板的应变场,从而激活两种稳定构型之间的快速快速弯折。虽然高电场用作驱动触发因素,但双稳态结构的自稳定特性无需持续供电。最后,我们推荐了一种新的流量控制方法,即通过将双稳态介电弹性体致动器用作二元阀来调节曲面上的孔隙率。