Vol. 143
Latest Volume
All Volumes
PIERC 145 [2024] PIERC 144 [2024] PIERC 143 [2024] PIERC 142 [2024] PIERC 141 [2024] PIERC 140 [2024] PIERC 139 [2024] PIERC 138 [2023] PIERC 137 [2023] PIERC 136 [2023] PIERC 135 [2023] PIERC 134 [2023] PIERC 133 [2023] PIERC 132 [2023] PIERC 131 [2023] PIERC 130 [2023] PIERC 129 [2023] PIERC 128 [2023] PIERC 127 [2022] PIERC 126 [2022] PIERC 125 [2022] PIERC 124 [2022] PIERC 123 [2022] PIERC 122 [2022] PIERC 121 [2022] PIERC 120 [2022] PIERC 119 [2022] PIERC 118 [2022] PIERC 117 [2021] PIERC 116 [2021] PIERC 115 [2021] PIERC 114 [2021] PIERC 113 [2021] PIERC 112 [2021] PIERC 111 [2021] PIERC 110 [2021] PIERC 109 [2021] PIERC 108 [2021] PIERC 107 [2021] PIERC 106 [2020] PIERC 105 [2020] PIERC 104 [2020] PIERC 103 [2020] PIERC 102 [2020] PIERC 101 [2020] PIERC 100 [2020] PIERC 99 [2020] PIERC 98 [2020] PIERC 97 [2019] PIERC 96 [2019] PIERC 95 [2019] PIERC 94 [2019] PIERC 93 [2019] PIERC 92 [2019] PIERC 91 [2019] PIERC 90 [2019] PIERC 89 [2019] PIERC 88 [2018] PIERC 87 [2018] PIERC 86 [2018] PIERC 85 [2018] PIERC 84 [2018] PIERC 83 [2018] PIERC 82 [2018] PIERC 81 [2018] PIERC 80 [2018] PIERC 79 [2017] PIERC 78 [2017] PIERC 77 [2017] PIERC 76 [2017] PIERC 75 [2017] PIERC 74 [2017] PIERC 73 [2017] PIERC 72 [2017] PIERC 71 [2017] PIERC 70 [2016] PIERC 69 [2016] PIERC 68 [2016] PIERC 67 [2016] PIERC 66 [2016] PIERC 65 [2016] PIERC 64 [2016] PIERC 63 [2016] PIERC 62 [2016] PIERC 61 [2016] PIERC 60 [2015] PIERC 59 [2015] PIERC 58 [2015] PIERC 57 [2015] PIERC 56 [2015] PIERC 55 [2014] PIERC 54 [2014] PIERC 53 [2014] PIERC 52 [2014] PIERC 51 [2014] PIERC 50 [2014] PIERC 49 [2014] PIERC 48 [2014] PIERC 47 [2014] PIERC 46 [2014] PIERC 45 [2013] PIERC 44 [2013] PIERC 43 [2013] PIERC 42 [2013] PIERC 41 [2013] PIERC 40 [2013] PIERC 39 [2013] PIERC 38 [2013] PIERC 37 [2013] PIERC 36 [2013] PIERC 35 [2013] PIERC 34 [2013] PIERC 33 [2012] PIERC 32 [2012] PIERC 31 [2012] PIERC 30 [2012] PIERC 29 [2012] PIERC 28 [2012] PIERC 27 [2012] PIERC 26 [2012] PIERC 25 [2012] PIERC 24 [2011] PIERC 23 [2011] PIERC 22 [2011] PIERC 21 [2011] PIERC 20 [2011] PIERC 19 [2011] PIERC 18 [2011] PIERC 17 [2010] PIERC 16 [2010] PIERC 15 [2010] PIERC 14 [2010] PIERC 13 [2010] PIERC 12 [2010] PIERC 11 [2009] PIERC 10 [2009] PIERC 9 [2009] PIERC 8 [2009] PIERC 7 [2009] PIERC 6 [2009] PIERC 5 [2008] PIERC 4 [2008] PIERC 3 [2008] PIERC 2 [2008] PIERC 1 [2008]
2024-06-04
Simplified Three-Vector Selection Model Predictive Current Control for PMSM Considering Fixed Switching Frequency
By
Progress In Electromagnetics Research C, Vol. 143, 199-207, 2024
Abstract
To address the insufficiency of large computation and unfixed switching frequency in permanent magnet synchronous motor (PMSM) of three-vector model predictive current control (TV-MPCC), simplified three-vector selection model predictive current control (STV-MPCC) for PMSM considering fixed switching frequency is proposed. Firstly, a novel voltage vector selection strategy is constructed by calculating the reference voltage in combination with the deadbeat control and re-dividing the sectors, reducing the number of optimizations from 11 to 5. Then, the current error is introduced in the calculation of the duty cycle to simplify the conventional control algorithm, The current ripple is reduced, and the system switching frequency is fixed. Finally, the experimental results indicate that compared with the conventional TV-MPCC, the d-q axis current ripple has been reduced by 13% and 18% respectively, and the torque ripple has been reduced by 6%, THD decreased from 4.70% to 4.25% and the steady-state performance of the motor is improved.
Citation
Dingdou Wen, Zhuoheng Li, Xiaorui Wei, and Zhun Cheng, "Simplified Three-Vector Selection Model Predictive Current Control for PMSM Considering Fixed Switching Frequency," Progress In Electromagnetics Research C, Vol. 143, 199-207, 2024.
doi:10.2528/PIERC24032706
References

1. Junejo, Abdul Khalique, Wei Xu, Chaoxu Mu, Moustafa Magdi Ismail, and Yi Liu, "Adaptive speed control of PMSM drive system based a new sliding-mode reaching law," IEEE Transactions on Power Electronics, Vol. 35, No. 11, 12110-12121, 2020.

2. Ullah, Kifayat, Jaroslaw Guzinski, and Adeel Feroz Mirza, "Critical review on robust speed control techniques for permanent magnet synchronous motor (PMSM) speed regulation," Energies, Vol. 15, No. 3, 1235, 2022.

3. Orlowska-Kowalska, Teresa, Marcin Wolkiewicz, Przemyslaw Pietrzak, Maciej Skowron, Pawel Ewert, Grzegorz Tarchala, Mateusz Krzysztofiak, and Czeslaw T. Kowalski, "Fault diagnosis and fault-tolerant control of PMSM drives - State of the art and future challenges," IEEE Access, Vol. 10, 59979-60024, 2022.

4. Xu, Wei, Abdul Khalique Junejo, Yi Liu, Mohamed G. Hussien, and Jianguo Zhu, "An efficient antidisturbance sliding-mode speed control method for PMSM drive systems," IEEE Transactions on Power Electronics, Vol. 36, No. 6, 6879-6891, 2020.

5. Wireko-Brobby, Alexander, Yihua Hu, Gaolin Wang, Chao Gong, Wangjie Lang, and Zeliang Zhang, "Analysis of the sources of error within PMSM-based electric powertrains - A review," IEEE Transactions on Transportation Electrification, 2023.

6. Candelo-Zuluaga, Carlos, Jordi-Roger Riba, and Antoni Garcia, "PMSM parameter estimation for sensorless FOC based on differential power factor," IEEE Transactions on Instrumentation and Measurement, Vol. 70, 1-12, 2021.

7. Abassi, M., A. Khlaief, O. Saadaoui, A. Chaari, and M. Boussak, "Performance analysis of FOC and DTC for PMSM drives using SVPWM technique," 2015 16th International Conference on Sciences and Techniques of Automatic Control and Computer Engineering (STA), 228-233, IEEE, 2015.

8. Abu-Ali, Mohammad, Felix Berkel, Maximilian Manderla, Sven Reimann, Ralph Kennel, and Mohamed Abdelrahem, "Deep learning-based long-horizon MPC: Robust, high performing, and computationally efficient control for PMSM drives," IEEE Transactions on Power Electronics, Vol. 37, No. 10, 12486-12501, 2022.

9. Sun, Xiaodong, Minkai Wu, Gang Lei, Youguang Guo, and Jianguo Zhu, "An improved model predictive current control for PMSM drives based on current track circle," IEEE Transactions on Industrial Electronics, Vol. 68, No. 5, 3782-3793, 2020.

10. Xu, Yanping, Xianhua Ding, Jibing Wang, and Chen Wang, "Robust three-vector-based low-complexity model predictive current control with supertwisting-algorithm-based second-order sliding-mode observer for permanent magnet synchronous motor," IET Power Electronics, Vol. 12, No. 11, 2895-2903, 2019.

11. Agoro, Sodiq and Iqbal Husain, "Robust deadbeat finite-set predictive current control with torque oscillation and noise reduction for PMSM drives," IEEE Transactions on Industry Applications, Vol. 58, No. 1, 365-374, 2021.

12. Zhang, Xiaoguang, Hailong Bai, and Ming Cheng, "Improved model predictive current control with series structure for PMSM drives," IEEE Transactions on Industrial Electronics, Vol. 69, No. 12, 12437-12446, 2021.

13. Wu, Xuan, Meizhou Yang, Ting Wu, Kaiyuan Lu, Yizhe Wang, Xicai Liu, Shoudao Huang, and Hesong Cui, "Parameter-free predictive torque and flux control for PMSM based on incremental stator flux predictive model," IEEE Transactions on Industrial Informatics, Vol. 20, No. 2, 2715-2726, 2024.

14. Lan, Zhiyong, Luo Jie, Li Yanhao, Li Chao, and Li Fu, "Model predictive torque control of permanent magnet synchronous motor based on fast selection table," Transactions of China Electro Technical Society, Vol. 38, No. 21, 5749-5757, 2023.

15. Xu, Bo, Qing Jiang, Wei Ji, and Shihong Ding, "An improved three-vector-based model predictive current control method for surface-mounted PMSM drives," IEEE Transactions on Transportation Electrification, Vol. 8, No. 4, 4418-4430, 2022.

16. Dong, Hongliang and Yi Zhang, "A low-complexity double vector model predictive current control for permanent magnet synchronous motors," Energies, Vol. 17, No. 1, 147, 2023.

17. Xu, Yanping, Jibing Wang, Baocheng Zhang, et al., "Three vector model predictive current control for permanent magnet synchronous motors," Transactions of China Electro Technical Society, Vol. 33, No. 5, 980-988, 2018.

18. Chen, Rong, Huping Shu, and Kaimiao Zhai, "Three vector fixed switching frequency model predictive current control strategy for low complexity permanent magnet synchronous motors," Proceedings of the CSEE, 2023.

19. Xu, Yanping, Jibing Wang, Qin Zhou, et al., "Dual optimization three vector model predictive current control for permanent magnet synchronous motors," Proceedings of the CSEE, Vol. 38, No. 6, 1857-1864, 2018.

20. Wen, Dingdou, Yanqin Zhang, and Yang Zhang, "Three-vector model-free predictive control for permanent magnet synchronous motor," IET Power Electronics, Vol. 16, No. 16, 2754-2768, 2023.

21. Zhou, Qixun, Fan Liu, and Hao Gong, "Robust three-vector model predictive torque and stator flux control for PMSM drives with prediction error compensation," Journal of Power Electronics, Vol. 22, No. 11, 1917-1926, 2022.

22. Duan, Xinwei, Longyun Kang, Hailan Zhou, and Ming Zhao, "Three‐vector model predictive power control for three‐level T‐type rectifier based on dead‐beat control," IET Power Electronics, Vol. 15, No. 15, 1741-1758, 2022.

23. Li, Teng, Xiaodong Sun, Gang Lei, Youguang Guo, Zebin Yang, and Jianguo Zhu, "Finite-control-set model predictive control of permanent magnet synchronous motor drive systems - An overview," IEEE/CAA Journal of Automatica Sinica, Vol. 9, No. 12, 2087-2105, 2022.