Cargando…

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

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, dy...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhu, Junhui, Pan, Peng, Wang, Yong, Gu, Sen, Zhai, Rongan, Pang, Ming, Liu, Xinyu, Ru, Changhai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7464476/
https://www.ncbi.nlm.nih.gov/pubmed/32796506
http://dx.doi.org/10.3390/mi11080765
_version_ 1783577374379474944
author Zhu, Junhui
Pan, Peng
Wang, Yong
Gu, Sen
Zhai, Rongan
Pang, Ming
Liu, Xinyu
Ru, Changhai
author_facet Zhu, Junhui
Pan, Peng
Wang, Yong
Gu, Sen
Zhai, Rongan
Pang, Ming
Liu, Xinyu
Ru, Changhai
author_sort Zhu, Junhui
collection PubMed
description 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.
format Online
Article
Text
id pubmed-7464476
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-74644762020-09-04 A Novel Stick-Slip Nanopositioning Stage Integrated with a Flexure Hinge-Based Friction Force Adjusting Structure Zhu, Junhui Pan, Peng Wang, Yong Gu, Sen Zhai, Rongan Pang, Ming Liu, Xinyu Ru, Changhai Micromachines (Basel) Article 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. MDPI 2020-08-11 /pmc/articles/PMC7464476/ /pubmed/32796506 http://dx.doi.org/10.3390/mi11080765 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhu, Junhui
Pan, Peng
Wang, Yong
Gu, Sen
Zhai, Rongan
Pang, Ming
Liu, Xinyu
Ru, Changhai
A Novel Stick-Slip Nanopositioning Stage Integrated with a Flexure Hinge-Based Friction Force Adjusting Structure
title A Novel Stick-Slip Nanopositioning Stage Integrated with a Flexure Hinge-Based Friction Force Adjusting Structure
title_full A Novel Stick-Slip Nanopositioning Stage Integrated with a Flexure Hinge-Based Friction Force Adjusting Structure
title_fullStr A Novel Stick-Slip Nanopositioning Stage Integrated with a Flexure Hinge-Based Friction Force Adjusting Structure
title_full_unstemmed A Novel Stick-Slip Nanopositioning Stage Integrated with a Flexure Hinge-Based Friction Force Adjusting Structure
title_short A Novel Stick-Slip Nanopositioning Stage Integrated with a Flexure Hinge-Based Friction Force Adjusting Structure
title_sort novel stick-slip nanopositioning stage integrated with a flexure hinge-based friction force adjusting structure
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7464476/
https://www.ncbi.nlm.nih.gov/pubmed/32796506
http://dx.doi.org/10.3390/mi11080765
work_keys_str_mv AT zhujunhui anovelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT panpeng anovelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT wangyong anovelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT gusen anovelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT zhairongan anovelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT pangming anovelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT liuxinyu anovelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT ruchanghai anovelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT zhujunhui novelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT panpeng novelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT wangyong novelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT gusen novelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT zhairongan novelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT pangming novelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT liuxinyu novelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure
AT ruchanghai novelstickslipnanopositioningstageintegratedwithaflexurehingebasedfrictionforceadjustingstructure