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Design, Analysis, and Test of a Novel 2-DOF Nanopositioning System Driven by Dual Mode

机译:双模式驱动的新型2-DOF纳米定位系统的设计,分析和测试

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摘要

Piezodriven flexure-based motion stages, with a large workspace and high positioning precision, are really attractive for the realization of high-performance atomic force microscope (AFM) scanning. In this paper, a modified lever displacement amplifier is proposed for the mechanism design of a novel compliant two-degree-of-freedom (2-DOF) nanopositioning stage, which can be selected to drive in dual modes. Besides, the modified double four-bar parallelogram, P (P denotes prismatic) joints are adopted in designing the flexure limbs. The established models for the mechanical performance evaluation of the stage, in terms of kinetostatics, dynamics, and workspace, are validated by the finite-element analysis. After a series of dimension optimizations carried out through the particle swarm optimization algorithm, a novel active disturbance rejection controller, including the nonlinearity tracking differentiator, the extended state observer, and the nonlinear state error feedback, is proposed to automatically estimate and suppress plant uncertainties arising from the hysteresis nonlinearity, creep effect, sensor noises, and unknown disturbances. The simulation and prototype test results indicate that the first natural frequency of the proposed stage is approximated to be 831?Hz, the amplification ratio in two axes is about 4.2, and the workspace is $hbox{119.7} mu$m $timesbreak hbox{121.4}, mu$m, while the cross coupling between the two axes is kept within 2%. All the results prove that the developed stage possesses a good property for high-performance AFM scanning.
机译:压电驱动的基于挠曲的运动平台具有较大的工作空间和较高的定位精度,对于实现高性能原子力显微镜(AFM)扫描而言确实具有吸引力。在本文中,提出了一种改进的杠杆位移放大器,用于新型顺应性的两自由度(2-DOF)纳米定位平台的机构设计,该平台可以选择以双模式驱动。此外,在设计挠性肢体时,采用了改进的双四杆平行四边形,P(P表示棱柱形)接头。建立的用于阶段机械性能评估的模型,包括动静力学,动力学和工作空间,均通过有限元分析进行验证。在通过粒子群算法进行一系列尺寸优化之后,提出了一种新型的主动扰动抑制控制器,包括非线性跟踪微分器,扩展状态观测器和非线性状态误差反馈,以自动估计和抑制工厂不确定性的产生。磁滞非线性,蠕变效应,传感器噪声和未知干扰的影响。仿真和原型测试结果表明,拟议阶段的第一个固有频率约为831?Hz,两个轴上的放大率约为4.2,工作空间为<公式式= inline“> $ hbox {119.7} mu $ m $ timesbreak hbox {121.4},mu $ < /公式> m,而两个轴之间的交叉耦合保持在2%以内。所有结果证明,所开发的载物台具有用于高性能AFM扫描的良好性能。

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