TY - JOUR
T1 - Linearization design of a XY stage based on hybrid reluctance actuators
AU - Li, Weipeng
AU - Yu, Weidong
AU - Dai, Zhengyan
AU - Zhu, Yukai
AU - Wang, Guangyuan
AU - Li, Xiantao
N1 - Publisher Copyright:
© 2025 Elsevier Inc.
PY - 2026/3
Y1 - 2026/3
N2 - The nonlinearity of hybrid reluctance actuators (HRA) significantly restricts their applications in XY stage requiring long stroke, high bandwidth, and high precision. This paper presents an improved design methodology and experimental verification focusing on nonlinearity reduction of a XY stage based on hybrid reluctance actuators (HRA-XYS). Initially, the primary sources of nonlinearity in conventional HRA were analyzed, leading to a magnetic flux topological optimization approach for nonlinearity mitigation. Subsequently, a comprehensive dynamic model incorporating nonlinear characteristics was established, followed by a nonlinear optimization framework for key parameter design. Based on the optimization results, a prototype was fabricated for comprehensive performance evaluation and a proportional-derivative (PD)-based feedback compensator was implemented to extend bandwidth by actively modifying system stiffness and damping. Experimental results demonstrate significant improvements: nonlinearity <3.2 %, cross-axis coupling <0.4 %, positioning accuracy better than 0.1 μm, working stroke exceeding ±500 μm, and bandwidth of 375 Hz. These achievements verify the effectiveness of the proposed linearity-oriented design methodology and underscore its advance compared to similar works, indicating that the optimized actuator exhibits superior comprehensive performance in precision, stroke capability, and dynamic response characteristics.
AB - The nonlinearity of hybrid reluctance actuators (HRA) significantly restricts their applications in XY stage requiring long stroke, high bandwidth, and high precision. This paper presents an improved design methodology and experimental verification focusing on nonlinearity reduction of a XY stage based on hybrid reluctance actuators (HRA-XYS). Initially, the primary sources of nonlinearity in conventional HRA were analyzed, leading to a magnetic flux topological optimization approach for nonlinearity mitigation. Subsequently, a comprehensive dynamic model incorporating nonlinear characteristics was established, followed by a nonlinear optimization framework for key parameter design. Based on the optimization results, a prototype was fabricated for comprehensive performance evaluation and a proportional-derivative (PD)-based feedback compensator was implemented to extend bandwidth by actively modifying system stiffness and damping. Experimental results demonstrate significant improvements: nonlinearity <3.2 %, cross-axis coupling <0.4 %, positioning accuracy better than 0.1 μm, working stroke exceeding ±500 μm, and bandwidth of 375 Hz. These achievements verify the effectiveness of the proposed linearity-oriented design methodology and underscore its advance compared to similar works, indicating that the optimized actuator exhibits superior comprehensive performance in precision, stroke capability, and dynamic response characteristics.
KW - Actuators
KW - Hybrid reluctance
KW - Linearization
KW - Magnetic flux
KW - Topological optimization
KW - XY stage
UR - https://www.scopus.com/pages/publications/105024306087
U2 - 10.1016/j.precisioneng.2025.11.027
DO - 10.1016/j.precisioneng.2025.11.027
M3 - 文章
AN - SCOPUS:105024306087
SN - 0141-6359
VL - 98
SP - 178
EP - 190
JO - Precision Engineering
JF - Precision Engineering
ER -