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Article

Symmetry-Inspired Friction Compensation and GPI Observer-Based Nonlinear Predictive Control for Enhanced Speed Regulation in IPMSM Servo Systems

1
Engineeing Training Center, Nanjing Vocational University of Industry Technology, Nanjing 210023, China
2
Key Laboratory of Measurement and Control of CSE, Ministry of Education, School of Automation, Southeast University, Nanjing 210096, China
3
Academy of Art and Design, Anhui University of Technology, Ma’anshan 243002, China
*
Author to whom correspondence should be addressed.
Symmetry 2025, 17(7), 1012; https://doi.org/10.3390/sym17071012
Submission received: 14 May 2025 / Revised: 16 June 2025 / Accepted: 24 June 2025 / Published: 27 June 2025

Abstract

In integrated permanent magnet synchronous motors (IPMSMs) coupled with mechanical devices such as ball screws and reducers, complex nonlinear friction characteristics often arise, leading to asymmetrical distortions such as position “flat-top” and speed “ramp-up”. These phenomena significantly degrade the system’s positioning accuracy. To address this issue, this paper introduces a symmetry-inspired nonlinear predictive speed control approach based on the Stribeck piecewise linearized friction compensation and a generalized proportional integral (GPI) observer. The proposed method leverages the inherent symmetry in the Stribeck friction model to describe the nonlinear behavior, employing online piecewise linearization via the least squares method. A GPI observer was designed to estimate the lumped disturbance, including time-varying components in the speed dynamics, friction model deviations, and external loads. By incorporating these estimates, a nonlinear predictive controller was developed, employing a quadratic cost function to derive the optimal control law. The experimental results demonstrate that, compared to traditional integral NPC and PI controllers, the proposed method effectively restores system symmetry by eliminating the “flat-top” and “ramp-up” distortions while maintaining computational efficiency.
Keywords: interior permanent magnet synchronous motor; nonlinear friction compensation; nonlinear predictive control; GPI observer; symmetry-inspired friction compensation interior permanent magnet synchronous motor; nonlinear friction compensation; nonlinear predictive control; GPI observer; symmetry-inspired friction compensation

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MDPI and ACS Style

Wu, C.; Wang, X.; Ren, Y.; Zhou, Y. Symmetry-Inspired Friction Compensation and GPI Observer-Based Nonlinear Predictive Control for Enhanced Speed Regulation in IPMSM Servo Systems. Symmetry 2025, 17, 1012. https://doi.org/10.3390/sym17071012

AMA Style

Wu C, Wang X, Ren Y, Zhou Y. Symmetry-Inspired Friction Compensation and GPI Observer-Based Nonlinear Predictive Control for Enhanced Speed Regulation in IPMSM Servo Systems. Symmetry. 2025; 17(7):1012. https://doi.org/10.3390/sym17071012

Chicago/Turabian Style

Wu, Chao, Xiaohong Wang, Yao Ren, and Yuying Zhou. 2025. "Symmetry-Inspired Friction Compensation and GPI Observer-Based Nonlinear Predictive Control for Enhanced Speed Regulation in IPMSM Servo Systems" Symmetry 17, no. 7: 1012. https://doi.org/10.3390/sym17071012

APA Style

Wu, C., Wang, X., Ren, Y., & Zhou, Y. (2025). Symmetry-Inspired Friction Compensation and GPI Observer-Based Nonlinear Predictive Control for Enhanced Speed Regulation in IPMSM Servo Systems. Symmetry, 17(7), 1012. https://doi.org/10.3390/sym17071012

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