A Piezoelectric Stick-Slip Nanopositioning Stage With Ultra-High Load Capacity Realizing by Decoupling the Driving and Moving Units

The stick-slip piezoelectric stage plays an important role in micro-operation and industrial applications due to its nanometer resolution. However, under high load, the output performance of the piezoelectric stage will be seriously influenced. In order to overcome this limitation, this paper propos...

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Main Authors: Yang Yu, Qiang Gao, Xiaosong Zhang, Guangda Qiao, Yi Han, Xiaohui Lu, Tinghai Cheng
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8854078/
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spelling doaj-e510f1c812274c6bb0feb1816f799a772021-03-29T23:54:31ZengIEEEIEEE Access2169-35362019-01-01714280614281310.1109/ACCESS.2019.29448408854078A Piezoelectric Stick-Slip Nanopositioning Stage With Ultra-High Load Capacity Realizing by Decoupling the Driving and Moving UnitsYang Yu0Qiang Gao1Xiaosong Zhang2Guangda Qiao3Yi Han4Xiaohui Lu5Tinghai Cheng6https://orcid.org/0000-0001-8957-1624School of Mechatronic Engineering, Changchun University of Technology, Changchun, ChinaSchool of Mechatronic Engineering, Changchun University of Technology, Changchun, ChinaSchool of Mechatronic Engineering, Changchun University of Technology, Changchun, ChinaSchool of Mechatronic Engineering, Changchun University of Technology, Changchun, ChinaSchool of Mechanical Engineering, The University of Melbourne, Melbourne, VIC, AustraliaSchool of Mechatronic Engineering, Changchun University of Technology, Changchun, ChinaSchool of Mechatronic Engineering, Changchun University of Technology, Changchun, ChinaThe stick-slip piezoelectric stage plays an important role in micro-operation and industrial applications due to its nanometer resolution. However, under high load, the output performance of the piezoelectric stage will be seriously influenced. In order to overcome this limitation, this paper proposes a piezoelectric stick-slip nanopositioning stage with ultra-high load capacity by introducing the load unit to decouple the driving and moving units. A kinetic model of prototype is established to analyze the working process. And a series of experiments are carried out to explore the output performance of the prototype. The geometry of the prototype is 85 mm (Length)×50 mm (Width)×32 mm (Height), and the mass of it is 303 g. By using only one piezoelectric stack, this prototype can achieve load capacity more than 10 kg and driving capacity more than 47.62 [(mm/s)g/mW] in both directions. When there is free-load, under the sawtooth waveform of 100 V at 600 Hz, the velocity of the prototype can reach 4.75 mm/s and 4.86 mm/s in forward and backward directions respectively. Meanwhile, the forward and backward resolution of the prototype can attain 30 nm and 33 nm, respectively. When the load is 10 kg which is about 33 times larger than the weight of prototype, the velocity of the prototype is almost the same as the velocity under free-load.https://ieeexplore.ieee.org/document/8854078/Stick-slipnanopositioning stageultra-high load capacityhigh resolution
collection DOAJ
language English
format Article
sources DOAJ
author Yang Yu
Qiang Gao
Xiaosong Zhang
Guangda Qiao
Yi Han
Xiaohui Lu
Tinghai Cheng
spellingShingle Yang Yu
Qiang Gao
Xiaosong Zhang
Guangda Qiao
Yi Han
Xiaohui Lu
Tinghai Cheng
A Piezoelectric Stick-Slip Nanopositioning Stage With Ultra-High Load Capacity Realizing by Decoupling the Driving and Moving Units
IEEE Access
Stick-slip
nanopositioning stage
ultra-high load capacity
high resolution
author_facet Yang Yu
Qiang Gao
Xiaosong Zhang
Guangda Qiao
Yi Han
Xiaohui Lu
Tinghai Cheng
author_sort Yang Yu
title A Piezoelectric Stick-Slip Nanopositioning Stage With Ultra-High Load Capacity Realizing by Decoupling the Driving and Moving Units
title_short A Piezoelectric Stick-Slip Nanopositioning Stage With Ultra-High Load Capacity Realizing by Decoupling the Driving and Moving Units
title_full A Piezoelectric Stick-Slip Nanopositioning Stage With Ultra-High Load Capacity Realizing by Decoupling the Driving and Moving Units
title_fullStr A Piezoelectric Stick-Slip Nanopositioning Stage With Ultra-High Load Capacity Realizing by Decoupling the Driving and Moving Units
title_full_unstemmed A Piezoelectric Stick-Slip Nanopositioning Stage With Ultra-High Load Capacity Realizing by Decoupling the Driving and Moving Units
title_sort piezoelectric stick-slip nanopositioning stage with ultra-high load capacity realizing by decoupling the driving and moving units
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description The stick-slip piezoelectric stage plays an important role in micro-operation and industrial applications due to its nanometer resolution. However, under high load, the output performance of the piezoelectric stage will be seriously influenced. In order to overcome this limitation, this paper proposes a piezoelectric stick-slip nanopositioning stage with ultra-high load capacity by introducing the load unit to decouple the driving and moving units. A kinetic model of prototype is established to analyze the working process. And a series of experiments are carried out to explore the output performance of the prototype. The geometry of the prototype is 85 mm (Length)×50 mm (Width)×32 mm (Height), and the mass of it is 303 g. By using only one piezoelectric stack, this prototype can achieve load capacity more than 10 kg and driving capacity more than 47.62 [(mm/s)g/mW] in both directions. When there is free-load, under the sawtooth waveform of 100 V at 600 Hz, the velocity of the prototype can reach 4.75 mm/s and 4.86 mm/s in forward and backward directions respectively. Meanwhile, the forward and backward resolution of the prototype can attain 30 nm and 33 nm, respectively. When the load is 10 kg which is about 33 times larger than the weight of prototype, the velocity of the prototype is almost the same as the velocity under free-load.
topic Stick-slip
nanopositioning stage
ultra-high load capacity
high resolution
url https://ieeexplore.ieee.org/document/8854078/
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