Research on PMSM Speed Performance Based on Fractional Order Adaptive Fuzzy Backstepping Control

A permanent magnet synchronous motor (PMSM) is a nonlinear, strongly coupled, controlled object with time-varying, fractional-order characteristics. It is difficult to achieve the ideal control effect by using the traditional control method when motor parameter changes and load perturbations occur d...

Full description

Bibliographic Details
Published in:Energies
Main Authors: Lei Zhang, Jiaqing Ma, Qinmu Wu, Zhiqin He, Tao Qin, Changsheng Chen
Format: Article
Language:English
Published: MDPI AG 2023-10-01
Subjects:
Online Access:https://www.mdpi.com/1996-1073/16/19/6922
_version_ 1850414889684697088
author Lei Zhang
Jiaqing Ma
Qinmu Wu
Zhiqin He
Tao Qin
Changsheng Chen
author_facet Lei Zhang
Jiaqing Ma
Qinmu Wu
Zhiqin He
Tao Qin
Changsheng Chen
author_sort Lei Zhang
collection DOAJ
container_title Energies
description A permanent magnet synchronous motor (PMSM) is a nonlinear, strongly coupled, controlled object with time-varying, fractional-order characteristics. It is difficult to achieve the ideal control effect by using the traditional control method when motor parameter changes and load perturbations occur during the operation of the PMSM, so a fractional-order adaptive fuzzy backstepping control method is proposed to improve the system’s fast response and anti-jamming ability in the case of sudden changes in rotational speed, load perturbations and other conditions. Initially, the fractional order theory is introduced, backstepping control is utilized to decompose the system into multiple subsystems, and a fractional order-based Lyapunov function is designed for each subsystem to ensure the system’s stability. Suitable control laws, as well as parameter adaptive laws, are derived through rigorous mathematical derivation. Finally, a fractional order adaptive fuzzy backstepping controller (FOAB-FPID) is designed by combining the advantages of fuzzy control. Then a mechanical simulation model of the PMSM is established to verify the validity of the designed controller, followed by three sets of comparative experiments: PID, fuzzy PID (F-PID), and integer-order adaptive fuzzy backstepping (IOAB-FPID), which are selected to simulate the PMSM under the control of the four controllers. Finally, it is validated on the constructed PMSM experimental platform. Simulation and experimental results show that FOAB-FPID can adaptively adjust system parameters during sudden speed changes, achieve real-time speed tracking, and maintain speed stability under load perturbations and internal parameter uptake. Compared with the three control strategies, reached PMSM system has better acceleration, fast response performance, and better anti-disturbance ability, which proves the rationality and effectiveness of the FOAB-FPID control method.
format Article
id doaj-art-36786c1957d44dfd90700869d6907df5
institution Directory of Open Access Journals
issn 1996-1073
language English
publishDate 2023-10-01
publisher MDPI AG
record_format Article
spelling doaj-art-36786c1957d44dfd90700869d6907df52025-08-19T22:45:24ZengMDPI AGEnergies1996-10732023-10-011619692210.3390/en16196922Research on PMSM Speed Performance Based on Fractional Order Adaptive Fuzzy Backstepping ControlLei Zhang0Jiaqing Ma1Qinmu Wu2Zhiqin He3Tao Qin4Changsheng Chen5College of Electrical Engineering, The Guizhou University, Guiyang 550025, ChinaCollege of Electrical Engineering, The Guizhou University, Guiyang 550025, ChinaCollege of Electrical Engineering, The Guizhou University, Guiyang 550025, ChinaCollege of Electrical Engineering, The Guizhou University, Guiyang 550025, ChinaCollege of Electrical Engineering, The Guizhou University, Guiyang 550025, ChinaCollege of Electrical Engineering, The Guizhou University, Guiyang 550025, ChinaA permanent magnet synchronous motor (PMSM) is a nonlinear, strongly coupled, controlled object with time-varying, fractional-order characteristics. It is difficult to achieve the ideal control effect by using the traditional control method when motor parameter changes and load perturbations occur during the operation of the PMSM, so a fractional-order adaptive fuzzy backstepping control method is proposed to improve the system’s fast response and anti-jamming ability in the case of sudden changes in rotational speed, load perturbations and other conditions. Initially, the fractional order theory is introduced, backstepping control is utilized to decompose the system into multiple subsystems, and a fractional order-based Lyapunov function is designed for each subsystem to ensure the system’s stability. Suitable control laws, as well as parameter adaptive laws, are derived through rigorous mathematical derivation. Finally, a fractional order adaptive fuzzy backstepping controller (FOAB-FPID) is designed by combining the advantages of fuzzy control. Then a mechanical simulation model of the PMSM is established to verify the validity of the designed controller, followed by three sets of comparative experiments: PID, fuzzy PID (F-PID), and integer-order adaptive fuzzy backstepping (IOAB-FPID), which are selected to simulate the PMSM under the control of the four controllers. Finally, it is validated on the constructed PMSM experimental platform. Simulation and experimental results show that FOAB-FPID can adaptively adjust system parameters during sudden speed changes, achieve real-time speed tracking, and maintain speed stability under load perturbations and internal parameter uptake. Compared with the three control strategies, reached PMSM system has better acceleration, fast response performance, and better anti-disturbance ability, which proves the rationality and effectiveness of the FOAB-FPID control method.https://www.mdpi.com/1996-1073/16/19/6922fractional orderadaptivefuzzy controlbacksteppingPMSM
spellingShingle Lei Zhang
Jiaqing Ma
Qinmu Wu
Zhiqin He
Tao Qin
Changsheng Chen
Research on PMSM Speed Performance Based on Fractional Order Adaptive Fuzzy Backstepping Control
fractional order
adaptive
fuzzy control
backstepping
PMSM
title Research on PMSM Speed Performance Based on Fractional Order Adaptive Fuzzy Backstepping Control
title_full Research on PMSM Speed Performance Based on Fractional Order Adaptive Fuzzy Backstepping Control
title_fullStr Research on PMSM Speed Performance Based on Fractional Order Adaptive Fuzzy Backstepping Control
title_full_unstemmed Research on PMSM Speed Performance Based on Fractional Order Adaptive Fuzzy Backstepping Control
title_short Research on PMSM Speed Performance Based on Fractional Order Adaptive Fuzzy Backstepping Control
title_sort research on pmsm speed performance based on fractional order adaptive fuzzy backstepping control
topic fractional order
adaptive
fuzzy control
backstepping
PMSM
url https://www.mdpi.com/1996-1073/16/19/6922
work_keys_str_mv AT leizhang researchonpmsmspeedperformancebasedonfractionalorderadaptivefuzzybacksteppingcontrol
AT jiaqingma researchonpmsmspeedperformancebasedonfractionalorderadaptivefuzzybacksteppingcontrol
AT qinmuwu researchonpmsmspeedperformancebasedonfractionalorderadaptivefuzzybacksteppingcontrol
AT zhiqinhe researchonpmsmspeedperformancebasedonfractionalorderadaptivefuzzybacksteppingcontrol
AT taoqin researchonpmsmspeedperformancebasedonfractionalorderadaptivefuzzybacksteppingcontrol
AT changshengchen researchonpmsmspeedperformancebasedonfractionalorderadaptivefuzzybacksteppingcontrol