一种具有纳米操作分辨率增强功能的新型定位平台

Chongrui Du, Weihai Chen, Xiantao Sun, Yunjie Wu, Jianbin Zhang, Wenjie Chen
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引用次数: 0

摘要

随着纳米科学和精密工程的飞速发展,高分辨率的定位系统是满足精确定位要求必不可少的。提出了一种具有分辨率增强功能的柔性定位平台的设计与建模方法。为了实现高增强比,采用单片对称设计,将两套减排量机构合并并串联配置。在将柔性铰链等效为带扭簧的理想旋转关节的前提下,建立了理论模型,分析了定位台的分辨率增强率和动态性能。并进行了有限元分析,研究了机构的性能,验证了理论模型。结果表明,该机构可实现18.75的分辨率增强比,提高定位性能;该机构的一阶固有频率为535.5Hz,保证了定位操作的带宽。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel positioning stage with resolution enhancement functionality for nano manipulation
With the rapid development of nano science and precision engineering, a positioning system with high resolution is indispensable to meet the requirement of precise positioning. This paper presents the design and modeling of a flexure-based positioning stage with the functionality of resolution enhancement. To achieve high enhancement ratio, two sets of displacement reduction mechanisms are incorporated and configured serially in a monolithic symmetrical design. Following the assumption that the flexure hinge can be equivalent to an ideal revolute joint with a torsional spring, theoretical models are established to analyze the resolution enhancement ratio and dynamic performance of the positioning stage. Moreover, finite element analysis (FEA) is conducted to study the performances of the mechanism and verify the theoretical models. The results show that the proposed mechanism can achieve a resolution enhancement ratio of 18.75 to improve the positioning performance, and the first order natural frequency of the mechanism is 535.5Hz, which guarantees the bandwidth of the positioning operation.
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