IPMC Kirigami:分布式驱动概念

A. Hun, Mirte Freriks, L. Sasso, Peyman Mohajerin Esfahani, S. Hosseinnia
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引用次数: 3

摘要

摘要-今天的机电一体化依赖于传统的换能器,即集总传感器和刚性结构的执行器。未来的消费产品、医疗设备和制造过程需要具有高数量和密度的单个传感器单元的传感和驱动系统。这样的系统可以称为分布式换能器。使用传统换能器构建分布式传感和驱动系统在经济上是负担不起的,需要一种替代解决方案。在这项工作中,我们提出并研究了一种基于柔性弯曲智能材料传感器构建分布式传感器和执行器系统的方法。单个换能器单元可以通过切割和蚀刻技术从平面材料衬底中分离出来,并且换能器的数量和密度仅受可用智能材料和设备的限制。在这项研究中,我们使用激光烧蚀技术将单个换能器单元从离子聚合物-金属复合材料(IPMC)片上分离出来,并在弯曲材料基板上产生平移驱动单元。研究了不同的弯曲结构几何形状,实现了四种不同的em尺度平移平台单元设计,并进行了实验验证。结果表明,将大量驱动单元蚀刻和切割成平面弯曲智能材料换能器是可能的,弯曲驱动可以实现平移,设计可以进一步小型化。因此,弯曲智能材料可用于构建单片分布式换能器。
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IPMC Kirigami: A Distributed Actuation Concept
Ahstract- Today's mechatronics relies on conventional transducers, i.e. lumped sensors and actuators with rigid construction. Future consumer products, medical devices and manufacturing processes require sensing and actuation systems with high count and density of individual transducer units. Such systems can be addressed as distributed transducers. Building distributed sensing and actuation systems with conventional transducers is economically unaffordable, and an alternative solution is needed. In this work we propose and study a methodology to build such distributed sensor and actuator systems from soft bending smart material transducers. Individual transducer units can be separated from the planar material substrate by cutting and etching techniques, and transducer counts and densities are only limited by the available smart materials and equipment. In this study we use laser ablation techniques to separate individual transducer units from the ionic polymer-metal composite (IPMC) sheets, and produce translational actuation units on the bending material substrate. IPMCs are manufactured in-house, different bending structure geometries are studied, and four different designs of the em-scale translational platform units are realized and validated experimentally. The results demonstrate that it is possible to etch and cut a multitude of actuation units into planar bending smart material transducers, that bending actuation can be used to realize translation, and that the designs can be further miniaturized. Therefore, bending smart materials can be utilized to build monolithic distributed transducers.
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