TY - JOUR
T1 - Cross-Scale Positioning of Three Degree-of-Freedom Planar Motions With Subnanometer Resolution Using an Encoded Pattern
AU - Li, Jiyu
AU - Chen, Tao
AU - Bi, Shusheng
AU - Wang, Yuliang
N1 - Publisher Copyright:
© IEEE. 1963-2012 IEEE.
PY - 2025
Y1 - 2025
N2 - High-precision and multiple degree-of-freedom (DOF) position sensing plays a central role in advanced mechatronic systems across a wide variety of applications, including fabrication, manipulation, and surface scanning. However, it remains a challenge to implement high-precision positioning over a large scale due to the inherent contradiction between measurement resolution and range. Here, we propose a visual sensing-based approach for accurate and cross-scale position measurement using an encoded pattern. In this method, the pattern is attached to the moving target, and three-DOF planar positioning (X, Y, and θZ) is realized by analyzing the Fourier spectrum of continuously captured 2-D periodic images. Lateral displacements (X and Y) and rotation angle θZ are independently extracted from the phase and amplitude spectra, respectively, ensuring decoupled measurements along all three axes. Real-time trajectory tracking experiments were carried out over a 90× 90mm2 area. The results demonstrate that the system achieves measurement standard deviations (STDs) of 0.81 nm, 0.77 nm, and 2.19μ rad in the X-, Y-, and θZ-axes, respectively. The corresponding expanded uncertainties at a 95% confidence level are ±1.76 nm, ±1.70 nm, and ± 4.82μ rad. The proposed approach provides a practical and scalable solution for trajectory planning and precision control in mechatronic systems that require both cross-scale range and high-precision positioning.
AB - High-precision and multiple degree-of-freedom (DOF) position sensing plays a central role in advanced mechatronic systems across a wide variety of applications, including fabrication, manipulation, and surface scanning. However, it remains a challenge to implement high-precision positioning over a large scale due to the inherent contradiction between measurement resolution and range. Here, we propose a visual sensing-based approach for accurate and cross-scale position measurement using an encoded pattern. In this method, the pattern is attached to the moving target, and three-DOF planar positioning (X, Y, and θZ) is realized by analyzing the Fourier spectrum of continuously captured 2-D periodic images. Lateral displacements (X and Y) and rotation angle θZ are independently extracted from the phase and amplitude spectra, respectively, ensuring decoupled measurements along all three axes. Real-time trajectory tracking experiments were carried out over a 90× 90mm2 area. The results demonstrate that the system achieves measurement standard deviations (STDs) of 0.81 nm, 0.77 nm, and 2.19μ rad in the X-, Y-, and θZ-axes, respectively. The corresponding expanded uncertainties at a 95% confidence level are ±1.76 nm, ±1.70 nm, and ± 4.82μ rad. The proposed approach provides a practical and scalable solution for trajectory planning and precision control in mechatronic systems that require both cross-scale range and high-precision positioning.
KW - 3-D
KW - cross-scale
KW - high-precision positioning
KW - stage motion control
KW - subnanometer resolution
UR - https://www.scopus.com/pages/publications/105011202845
U2 - 10.1109/TIM.2025.3589699
DO - 10.1109/TIM.2025.3589699
M3 - 文章
AN - SCOPUS:105011202845
SN - 0018-9456
VL - 74
JO - IEEE Transactions on Instrumentation and Measurement
JF - IEEE Transactions on Instrumentation and Measurement
M1 - 5039813
ER -