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一种集成了基于柔性铰链的摩擦力调节结构的新型粘滑纳米定位平台。

A Novel Stick-Slip Nanopositioning Stage Integrated with a Flexure Hinge-Based Friction Force Adjusting Structure.

作者信息

Zhu Junhui, Pan Peng, Wang Yong, Gu Sen, Zhai Rongan, Pang Ming, Liu Xinyu, Ru Changhai

机构信息

School of Mechatronic Engineering and Automation, Shanghai University, Shanghai 200444, China.

Department of Mechanical and Industrial Engineering, University of Toronto, Toronto, ON M5S 3G8, Canada.

出版信息

Micromachines (Basel). 2020 Aug 11;11(8):765. doi: 10.3390/mi11080765.

Abstract

The piezoelectrically-actuated stick-slip nanopositioning stage (PASSNS) has been applied extensively, and many designs of PASSNSs have been developed. The friction force between the stick-slip surfaces plays a critical role in successful movement of the stage, which influences the load capacity, dynamic performance, and positioning accuracy of the PASSNS. Toward solving the influence problems of friction force, this paper presents a novel stick-slip nanopositioning stage where the flexure hinge-based friction force adjusting unit was employed. Numerical analysis was conducted to estimate the static performance of the stage, a dynamic model was established, and simulation analysis was performed to study the dynamic performance of the stage. Further, a prototype was manufactured and a series of experiments were carried out to test the performance of the stage. The results show that the maximum forward and backward movement speeds of the stage are 1 and 0.7 mm/s, respectively, and the minimum forward and backward step displacements are approximately 11 and 12 nm, respectively. Compared to the step displacement under no working load, the forward and backward step displacements only increase by 6% and 8% with a working load of 20 g, respectively. And the load capacity of the PASSNS in the vertical direction is about 72 g. The experimental results confirm the feasibility of the proposed stage, and high accuracy, high speed, and good robustness to varying loads were achieved. These results demonstrate the great potential of the developed stage in many nanopositioning applications.

摘要

压电驱动的黏滑纳米定位平台(PASSNS)已得到广泛应用,并且已经开发出许多PASSNS的设计。黏滑表面之间的摩擦力在平台的成功运动中起着关键作用,这会影响PASSNS的负载能力、动态性能和定位精度。为了解决摩擦力的影响问题,本文提出了一种新型的黏滑纳米定位平台,该平台采用了基于柔性铰链的摩擦力调节单元。进行了数值分析以评估平台的静态性能,建立了动态模型,并进行了仿真分析以研究平台的动态性能。此外,制造了一个原型,并进行了一系列实验来测试平台的性能。结果表明,该平台的最大前后移动速度分别为1和0.7 mm/s,最小前后步进位移分别约为11和12 nm。与无工作负载下的步进位移相比,在20 g工作负载下,前后步进位移仅分别增加了6%和8%。并且PASSNS在垂直方向上的负载能力约为72 g。实验结果证实了所提出平台的可行性,并实现了高精度、高速度以及对变化负载的良好鲁棒性。这些结果证明了所开发平台在许多纳米定位应用中的巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5b9e/7464476/c4e6e662f1d1/micromachines-11-00765-g001.jpg

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