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An MEMS-based multiple electro-rheological bending actuator system with an alternating pressure source

机译:具有交替压力源的基于MEMS的多电流变弯曲致动器系统

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This paper presents a novel MEMS-based electro-rheological (ER) bending actuator system with an alternating pressure source for micro-scale applications with multiple microactuators. The ER bending actuator system is based on rectification of alternating flows by synchronized control valves using a liquid crystal as a working fluid. It enables the number and size of supply and return pipes to be reduced. In addition, the working principle of the alternating pressure system makes all critical hydraulic components such as the pump, valves and hydraulic actuators suitable for MEMS fabrication. In this paper, the bending parts featuring high-aspect-ratio and three-dimensional structures were realized by a newly developed PDMS micromolding process which was achieved by a separation process using poly (vinyl alcohol) (PVA) sacrificial layers dissolved by water ultrasonication with proper external forces. Control valves called ER microvalves were fabricated by standard silicon micromachining and their characteristics were investigated. The fabricated 1.6-mm long ER bending actuator demonstrated bi-directional motions that achieved a displacement of 1.1 mm (radius of curvature of 1.2 mm) and a rise time of 1.1 s. In addition, the characteristics of the tip displacements vs. applied voltages are also presented. The experimental results showed that this system is promising for control systems of high power, high-speed and miniature motion with large strokes. (C) 2016 Elsevier B.V. All rights reserved.
机译:本文提出了一种新颖的基于MEMS的电流变(ER)弯曲执行器系统,该系统具有交流压力源,适用于具有多个微执行器的微型应用。 ER弯曲执行器系统基于通过使用液晶作为工作流体的同步控制阀对交变流的整流。它可以减少进水管和回水管的数量和尺寸。此外,交流压力系统的工作原理使所有关键的液压组件(如泵,阀和液压执行器)都适合MEMS制造。在本文中,具有高纵横比和三维结构的弯曲部件是通过新开发的PDMS微成型工艺实现的,该工艺是通过使用聚乙烯醇(PVA)牺牲层通过水超声处理溶解的聚乙烯醇牺牲层的分离工艺而实现的。适当的外力。通过标准的硅微机械加工制造了称为ER微阀的控制阀,并研究了其特性。所制造的1.6毫米长的ER弯曲致动器具有双向运动,实现了1.1毫米的位移(1.2毫米的曲率半径)和1.1 s的上升时间。此外,还给出了尖端位移与施加电压的关系曲线。实验结果表明,该系统对于大功率,大行程,高速,微型运动的控制系统具有广阔的前景。 (C)2016 Elsevier B.V.保留所有权利。

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