一种基于柔性放大原理的压电尺蠖驱动器

Li Ma, Chenyang Jiang, Jintao Xiao, Kun Wang, Wei Xie, Bo Liu
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引用次数: 6

摘要

压电尺蠖驱动器具有行程大、分辨率高、刚性好、响应速度快、体积小、驱动力大、功耗低、不受电磁干扰等特点,在纳米定位和超精密检测仪器领域有着广泛的应用。本文研制了一种基于柔性放大原理的压电尺蠖作动器。在作动器的运动机构中,其夹紧机构采用对称杠杆放大结构,中间驱动机构采用复合桥式结构。对影响运动机构性能的铰链结构进行了理论分析和有限元分析。采用高精度交叉滚子导轨,提高了执行机构的定位精度。搭建了压电尺蠖驱动器实验平台。利用Lab-VIEW编写了执行器的控制程序。然后,对该驱动器的性能进行了测试。实验结果表明,当驱动频率为50 Hz,负载为1 kg时,执行机构的工作行程为50 mm,最小步距为60 μm,最大步距为105 μm,最快速度为2.04 mm/s,最大夹紧力为21 N,最大恒载为500 g,执行机构的平均速度可达1.47 mm/s。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A piezoelectric inchworm actuator based on the principle of flexible amplification
Piezoelectric inchworm actuators have a wide application in the field of Nano positioning and ultra-precision detecting instruments which depend on the characteristics of large stroke, high resolution and rigidity, quick response speed, small size, high driving force, low power consumption, not being affected by electromagnetic interference, and so on. A new piezoelectric inchworm actuator based on the principle of flexible amplification is developed in this paper. In the moving mechanism of the actuator, its clamping mechanism adopts symmetrical lever amplification structure, and its middle drive mechanism uses compound bridge structure. Theoretical analysis and finite element analysis are carried out to design the hinge structure which has influences on the properties of the moving mechanism. High precision cross roller guide ways are utilized to improve the positioning accuracy of the actuator. The laboratory platform of the piezoelectric inchworm actuator is built. A controlling program of the actuator is compiled by Lab-VIEW. Then, the properties of the actuator are tested. The experimental results show that the working stroke of the actuator is 50 mm, the minimum step pitch is 60 μm the maximum step pitch is 105 μm the fast speed is 2.04 mm/s, the maximum clamping force is 21 N, the maximum dead load is 500 g, and the average speed of the actuator can reach 1.47 mm/s when the driving frequency is 50 Hz and the load is 1 kg.
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