TY - JOUR
T1 - Self-Sensing 2-DOF Positioning System With Hysteresis Compensation for Microscale Applications
AU - Zhao, Zhihui
AU - Yuan, Songmei
AU - Chu, Xiangcheng
AU - Cao, Ran
AU - Chen, Meiyu
AU - Jin, Herong
N1 - Publisher Copyright:
© 2004-2012 IEEE.
PY - 2026
Y1 - 2026
N2 - This paper presents the development and experimental validation of a two-degree-of-freedom (2-DOF) positioning system that integrates mechanical structure, electronic circuits, and control strategies to address displacement feedback challenges. Space limitations in compact precision devices often make traditional displacement sensors impractical, hindering accurate feedback control. To overcome this limitation, the proposed system leverages self-sensing actuation (SSA) technology, enabling piezoelectric (PZT) stacks to function as both actuators and sensors. The motion principles of the parallel-structure mechanism are analyzed and validated through finite element analysis (FEA). A double closed-loop control strategy, combining charge-based feedback and voltage regulation, suppresses hysteresis and enhances trajectory tracking accuracy. Experimental results demonstrate a motion range of 73.37 × 72.30 µm2, with hysteresis reductions of 57.63% and 56.22% in the x and y directions. By extracting displacement signals directly from the PZT electrodes, the system eliminates external sensors, simplifying integration and improving reliability. This study demonstrates that SSA-based positioning systems can effectively address feedback challenges in microscale applications, providing a viable solution to enable the widespread adoption of complex multi-DOF positioning systems.
AB - This paper presents the development and experimental validation of a two-degree-of-freedom (2-DOF) positioning system that integrates mechanical structure, electronic circuits, and control strategies to address displacement feedback challenges. Space limitations in compact precision devices often make traditional displacement sensors impractical, hindering accurate feedback control. To overcome this limitation, the proposed system leverages self-sensing actuation (SSA) technology, enabling piezoelectric (PZT) stacks to function as both actuators and sensors. The motion principles of the parallel-structure mechanism are analyzed and validated through finite element analysis (FEA). A double closed-loop control strategy, combining charge-based feedback and voltage regulation, suppresses hysteresis and enhances trajectory tracking accuracy. Experimental results demonstrate a motion range of 73.37 × 72.30 µm2, with hysteresis reductions of 57.63% and 56.22% in the x and y directions. By extracting displacement signals directly from the PZT electrodes, the system eliminates external sensors, simplifying integration and improving reliability. This study demonstrates that SSA-based positioning systems can effectively address feedback challenges in microscale applications, providing a viable solution to enable the widespread adoption of complex multi-DOF positioning systems.
KW - Micro positioning applications
KW - parallel structure
KW - piezoelectric actuation
KW - self-sensing actuator
UR - https://www.scopus.com/pages/publications/105028441005
U2 - 10.1109/TASE.2026.3651131
DO - 10.1109/TASE.2026.3651131
M3 - 文章
AN - SCOPUS:105028441005
SN - 1545-5955
VL - 23
SP - 2678
EP - 2689
JO - IEEE Transactions on Automation Science and Engineering
JF - IEEE Transactions on Automation Science and Engineering
ER -