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Positioning Performance of a Sub-Arc-Second Micro-Drive Rotary System

In the macro/micro dual-drive rotary system, the micro-drive system compensates for the position error of the macro-drive system. To realize the sub-arc-second (i.e., level of 1″–0.1″) positioning of the macro/micro dual-drive rotary system, it is necessary to study the positioning performance of th...

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Autores principales: Yang, Manzhi, Lv, Zhenyang, Zhang, Chuanwei, Yang, Yizhi, Jing, Gang, Guo, Wei, Lu, Zhengxiong, Huang, Yumei, Wei, Kaiyang, Li, Linyue, Feng, Bin, Ge, Hongyu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8472757/
https://www.ncbi.nlm.nih.gov/pubmed/34577706
http://dx.doi.org/10.3390/mi12091063
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author Yang, Manzhi
Lv, Zhenyang
Zhang, Chuanwei
Yang, Yizhi
Jing, Gang
Guo, Wei
Lu, Zhengxiong
Huang, Yumei
Wei, Kaiyang
Li, Linyue
Feng, Bin
Ge, Hongyu
author_facet Yang, Manzhi
Lv, Zhenyang
Zhang, Chuanwei
Yang, Yizhi
Jing, Gang
Guo, Wei
Lu, Zhengxiong
Huang, Yumei
Wei, Kaiyang
Li, Linyue
Feng, Bin
Ge, Hongyu
author_sort Yang, Manzhi
collection PubMed
description In the macro/micro dual-drive rotary system, the micro-drive system compensates for the position error of the macro-drive system. To realize the sub-arc-second (i.e., level of 1″–0.1″) positioning of the macro/micro dual-drive rotary system, it is necessary to study the positioning performance of the sub-arc-second micro-drive rotary system. In this paper, we designed a sub-arc-second micro-drive rotary system consisting of a PZT (piezoelectric actuator) and a micro rotary mechanism, and used simulation and experimental methods to study the positioning performance of the system. First, the micro-drive rotary system was developed to provide ultra-precise rotary motion. In this system, the PZT has ultrahigh resolution at a level of 0.1 nanometers in linear motion; a micro rotating mechanism was designed according to the composite motion principle of the flexible hinge, which could transform the linear motion of piezoelectric ceramics into rotating motion accurately. Second, the drive performance was analyzed based on the drive performance experiment. Third, kinematics, simulation, and experiments were carried out to analyze the transformation performance of the system. Finally, the positioning performance equation of the system was established based on the two performance equations, and the maximum rotary displacements and positioning error of the system were calculated. The study results showed that the system can provide precision motion at the sub-arc-second and good linearity of motion. This study has a certain reference value in ultra-precision positioning and micromachining for research on rotary motion systems at the sub-arc-second level.
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spelling pubmed-84727572021-09-28 Positioning Performance of a Sub-Arc-Second Micro-Drive Rotary System Yang, Manzhi Lv, Zhenyang Zhang, Chuanwei Yang, Yizhi Jing, Gang Guo, Wei Lu, Zhengxiong Huang, Yumei Wei, Kaiyang Li, Linyue Feng, Bin Ge, Hongyu Micromachines (Basel) Article In the macro/micro dual-drive rotary system, the micro-drive system compensates for the position error of the macro-drive system. To realize the sub-arc-second (i.e., level of 1″–0.1″) positioning of the macro/micro dual-drive rotary system, it is necessary to study the positioning performance of the sub-arc-second micro-drive rotary system. In this paper, we designed a sub-arc-second micro-drive rotary system consisting of a PZT (piezoelectric actuator) and a micro rotary mechanism, and used simulation and experimental methods to study the positioning performance of the system. First, the micro-drive rotary system was developed to provide ultra-precise rotary motion. In this system, the PZT has ultrahigh resolution at a level of 0.1 nanometers in linear motion; a micro rotating mechanism was designed according to the composite motion principle of the flexible hinge, which could transform the linear motion of piezoelectric ceramics into rotating motion accurately. Second, the drive performance was analyzed based on the drive performance experiment. Third, kinematics, simulation, and experiments were carried out to analyze the transformation performance of the system. Finally, the positioning performance equation of the system was established based on the two performance equations, and the maximum rotary displacements and positioning error of the system were calculated. The study results showed that the system can provide precision motion at the sub-arc-second and good linearity of motion. This study has a certain reference value in ultra-precision positioning and micromachining for research on rotary motion systems at the sub-arc-second level. MDPI 2021-08-31 /pmc/articles/PMC8472757/ /pubmed/34577706 http://dx.doi.org/10.3390/mi12091063 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yang, Manzhi
Lv, Zhenyang
Zhang, Chuanwei
Yang, Yizhi
Jing, Gang
Guo, Wei
Lu, Zhengxiong
Huang, Yumei
Wei, Kaiyang
Li, Linyue
Feng, Bin
Ge, Hongyu
Positioning Performance of a Sub-Arc-Second Micro-Drive Rotary System
title Positioning Performance of a Sub-Arc-Second Micro-Drive Rotary System
title_full Positioning Performance of a Sub-Arc-Second Micro-Drive Rotary System
title_fullStr Positioning Performance of a Sub-Arc-Second Micro-Drive Rotary System
title_full_unstemmed Positioning Performance of a Sub-Arc-Second Micro-Drive Rotary System
title_short Positioning Performance of a Sub-Arc-Second Micro-Drive Rotary System
title_sort positioning performance of a sub-arc-second micro-drive rotary system
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8472757/
https://www.ncbi.nlm.nih.gov/pubmed/34577706
http://dx.doi.org/10.3390/mi12091063
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