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contributor authorZhang, Qianjun
contributor authorDong, Hui
contributor authorZhang, Zhicheng
contributor authorCai, Xinyu
contributor authorGao, Yongzhuo
contributor authorDong, Wei
date accessioned2026-08-23T07:31:39Z
date available2026-08-23T07:31:39Z
date copyright2025/11/01
date issued2025
identifier issn1942-4302
identifier otherjmr-25-1106.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4315224
description abstractAbstract. Six-degree-of-freedom (6-DOF) nanopositioning stages are indispensable in precision engineering. However, these stages currently exhibit significant crosstalk, which degrades their accuracy. This study proposes a kinematically decoupled 6-DOF nanopositioning stage with minimized crosstalk based on flexure hinges, and its conceptual design, modelling, and experimental investigation are described. First, the working principle of the stage is introduced, followed by its design mechanism with flexure hinges. Second, its stiffness model is established using Castigliano’s second theorem, which is then utilized for the optimization design. Finally, an experimental study conducted based on the fabricated prototype is described. The results reveal that the positioning stage features a resolution better than 20 nm, 0.07μrad, and set-point tracking accuracy better than 0.029μm and 0.192μrad for translation and rotation, respectively. Most importantly, its static single-axis crosstalk over the full range is less than 0.81%, and its dynamic crosstalk is reduced to less than 0.103μm and 0.778μrad, using a simple proportional–integral–derivative (PID) controller and quintic polynomial trajectory planning, respectively.
publisherThe American Society of Mechanical Engineers (ASME)
titleA Kinematically Decoupled 6-Degree-of-Freedom Nanopositioning Stage With Minimized Crosstalk Based on Flexure Hinges
typeJournal Paper
journal volume17
journal issue11
journal titleJournal of Mechanisms and Robotics
identifier doi10.1115/1.4069200
journal fristpage2827
journal lastpage2838
page12
treeJournal of Mechanisms and Robotics:;2025:;volume( 017 ):;issue:011
contenttypeFulltext


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