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基于光-静电斥力组合致动器的光控微夹钳设计与分析

Design and Analysis of a Light-Operated Microgripper Using an Opto-Electrostatic Repulsive Combined Actuator.

作者信息

Huang Jiahan, Jiang Chengbin, Li Guanghui, Lu Qinghua, Chen Haichu

机构信息

School of Mechatronic Engineering and Automation, Foshan University, Foshan 528225, China.

Shanghai Marine Equipment Research Institute, Shanghai 200031, China.

出版信息

Micromachines (Basel). 2021 Aug 27;12(9):1026. doi: 10.3390/mi12091026.

Abstract

The microgripper plays a critical role in micromanipulation systems; however, the handling accuracy of traditional driving microgrippers suffers from external vibration due to requiring connecting wires for an external power supply. By contrast, light driving has many advantages of remote non-contact manipulation, wireless energy transfer and no induced electromagnetic noise. In this study, an opto-electrostatic repulsive combined driving mechanism was proposed, and then a novel light-operated microgripper that used an opto-electrostatic repulsive actuator was designed and simulated. The static performance of the light-operated microgripper was investigated via simulation and numeric calculation results. The overall size of the microgripper was 1.3 mm × 0.7 mm × 1.027 mm, and the micro-objects ranging from 0 to 1000 μm in size could be manipulated and held using light. The proposed microgripper had many outstanding characteristics, such as a larger stroke, high response speed, remote non-contact manipulation, easy to integrate with an integrated circuit (IC) process and free from external interference. In addition, the dynamic control experiments of the photo-induced voltage of the PbLaZrTi (PLZT) ceramic were carried out, which shows that a stable electrical field could be obtained using the effective control methods that were developed.

摘要

微夹钳在微操作系统中起着关键作用;然而,传统驱动微夹钳的操作精度会受到外部振动的影响,因为其需要连接电线来获取外部电源。相比之下,光驱动具有远程非接触操作、无线能量传输且无感应电磁噪声等诸多优点。在本研究中,提出了一种光电斥力组合驱动机制,然后设计并模拟了一种使用光电斥力致动器的新型光控微夹钳。通过模拟和数值计算结果研究了光控微夹钳的静态性能。微夹钳的整体尺寸为1.3毫米×0.7毫米×1.027毫米,利用光可以操纵和夹持尺寸范围从0到1000微米的微小物体。所提出的微夹钳具有许多突出特性,如行程较大、响应速度快、远程非接触操作、易于与集成电路(IC)工艺集成且不受外部干扰。此外,还进行了PbLaZrTi(PLZT)陶瓷光生电压的动态控制实验,结果表明使用所开发的有效控制方法可以获得稳定的电场。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/da90/8467661/09717205e011/micromachines-12-01026-g001.jpg

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