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Proposal of a multiple ER microactuator system using an alternating pressure source

机译:使用交流压力源的多ER微执行器系统的建议

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This paper proposes and develops a multiple ER microactuator system using an alternating pressure source for in-pipe working micromachines, medical microrobots, and so on. A hydraulic microactuator is known to have high power density but also has the drawback of requiring large piping space for the supply and return of the working fluid. In this study, an alternating pressure system with synchronized control valves and a single pipe was proposed. As the control valves, simple ER microvalves were employed. The ER microvalves control an electro-theological fluid (ERF) flow through its apparent viscosity change due to the applied electric field. In addition, a pressure transmitter is inserted between the pressure source and the ER valves, and low viscosity fluid such as water is used to transmit the alternating pressure. The use of the low viscosity fluid can reduce the diameter of the connecting pipe due to the low pressure loss. The proposed set-up is composed of multiple ER microactuators and an alternating pressure source; each ER microactuator consists of a pressure transmitter, two ER microvalves and a hydraulic microactuator. As the proposed system has half the number of pipes, of smaller diameter, compared with conventional hydraulic microactuator systems, it is suitable for a multiple actuator system. In this study, for verification of the working principle of the proposed system, we fabricated a large model of the system which consists of an ER finger 13 mm x 10 mm x 33 mm in size as a kind of ER microactuator and an alternating pressure source using a voice coil motor. Through experiments, we confirmed the tip displacement of 17 mm for the 16 mm-long movable part of the finger. Then, we fabricated a gripper using two ER fingers and confirmed its independent motion. (C) 2014 Elsevier B.V. All rights reserved.
机译:本文提出并开发了一种使用交变压力源的多ER微执行器系统,该系统用于管道内工作的微型机器,医疗微型机器人等。已知液压微致动器具有高功率密度,但是也具有需要大的管道空间来供应和返回工作流体的缺点。在这项研究中,提出了一种具有同步控制阀和单个管道的交流压力系统。作为控制阀,使用了简单的ER微型阀。 ER微型阀通过施加的电场控制其表观粘度变化,从而控制着电神流体(ERF)的流动。另外,在压力源和ER阀之间插入压力变送器,并且使用诸如水的低粘度流体来传递交变压力。由于低的压力损失,使用低粘度的流体可以减小连接管的直径。拟议的装置由多个ER微致动器和一个交替压力源组成。每个ER微执行器均包含一个压力变送器,两个ER微阀和一个液压微执行器。与传统的液压微执行器系统相比,由于拟议的系统具有一半数量的管道,直径较小,因此适用于多执行器系统。在本研究中,为验证所提出系统的工作原理,我们制造了一个大型系统模型,该系统由大小为13 mm x 10 mm x 33 mm的ER指作为ER微致动器和交流压力源组成使用音圈马达。通过实验,我们确认了16毫米长的手指可移动部分的笔尖位移为17毫米。然后,我们使用两个ER手指制作了一个抓具,并确认了其独立运动。 (C)2014 Elsevier B.V.保留所有权利。

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