Sensorless Control of Permanent Magnet Synchronous Motor Based on Improved Quadrature Phase-locked Loop
Wu Xiang1, Chen Shuo2, Li Jia1, Zhang Jiazhe1, Zhang Xiao1
1. School of Electrical Engineering, China University of Mining and Technology Xuzhou 221008 China; 2. School of Electrical Engineering, Xi'an Jiaotong University Xi'an 710049 China
Abstract:Permanent magnet synchronous motor (PMSM) drive system with sensorless control can realize energy conversion with high reliability, high efficiency, and high power density at low cost, which has become one of the research focuses in the current AC motor control field. For the sensorless control of the PMSM in the medium and high speed region, the speed and rotor position information can be obtained through the quadrature phase-locked loop (QPLL) after the back EMF or flux linkage information is observed by using the fundamental frequency model method. QPLL includes three parts, i.e., phase detector (PD), loop filter (LF), and voltage controlled oscillator (VCO). The structure and parameters of each part directly affect the stability and dynamic performance of QPLL. In order to optimize the performance of QPLL, scholars at home and abroad have made corresponding improvements. To optimize the performance of QPLL, scholars have made corresponding improvements. However, most of the improved QPLLs usually only consider a single optimization objective. For the occasion where frequent acceleration and deceleration and forward and reverse rotation are required, it is not only necessary to overcome the problem of the conventional QPLL that large estimation error of rotor position appears during acceleration and deceleration operation, but also need to solve the problem of 180 degrees deviation between the observed rotor position and the actual rotor position under reverse rotation conditions. In order to solve the problem of reverse failure and significant DC offset error appearing in the rotor position under acceleration and deceleration conditions when conventional quadrature phase-locked loop (QPLL) is applied to sensorless control of permanent magnet synchronous motor (PMSM), the deterioration mechanism of the conventional QPLL under reverse rotation and acceleration/deceleration conditions is analyzed and an improved quadrature phase-locked loop (IQPLL) is proposed in this paper. By reconstructing the phase detector, the output of the phase detector is no longer related to the rotation direction of the PMSM, thus solving one of the problems of the conventional QPLL, i.e., the 180 degree deviation in estimating the rotor position when the motor reverses. In addition, under the new phase detector, a feedforward loop is designed to compensate the DC offset error appearing in the rotor position under acceleration and deceleration conditions. The small signal model of new IQPLL is established, and the parameter design method of IQPLL is given according to the frequency response characteristics of the system. The experimental results in a 630kW PMSM platform show that the proposed IQPLL, compared with the conventional QPLL, can realize the forward and reverse control of the PMSM, and effectively suppress DC offset error appearing in the rotor position under acceleration and deceleration conditions. Unlike most existing improved QPLLs, which only optimize a single objective, the proposed IQPLL studied in this paper realizes the optimization of two objectives at the same time, which not only solves the problem of conventional QPLL inversion failure, but also suppresses the problem of large rotor position estimation error during acceleration and deceleration operation. Accordingly, the IQPLL studied in this paper has outstanding advantages for the occasions where acceleration and deceleration are frequent and forward and reverse rotation are required.
[1] Xu W, Wang L, Liu Y, et al.Improved rotor flux observer for sensorless control of PMSM with adaptive harmonic elimination and phase compensation[J]. CES Transactions on Electrical Machines and Systems, 2019, 3(2):151-159. [2] 张国强,项润华,王高林,等.基于静止轴系脉冲信号注入的永磁同步电机无传感器控制策略[J].中国电机工程学报,2021,41(12): 4297-4306. Zhang Guoqiang, Xiang Runhua, Wang Gaolin, et al.Pulse Signal Injection in Stationary Reference Frame for Sensorless PMSM Drives[J]. Proceedings of the CSEE, 2021,41(12): 4297-4306. (in Chinese). [3] 赵文祥,刘桓,陶涛,等.基于虚拟信号和高频脉振信号注入的无位置传感器内置式永磁同步电机MTPA控制[J].电工技术学报,2021,36(24):5092-5100. Zhao Wenxiang, Liu Huan, Tao Tao, et al.MTPA Control of Sensorless IPMSM Based on Virtual Signal and High-Frequency Pulsating Signal Injection[J]. Transactions of China Electrotechnical Society, 2021,36(24):5092-5100 (in Chinese). [4] 曹春堂,兰志勇,沈凡享.永磁同步电机无位置传感器控制系统中初始位置角检测综述[J].电气技术,2020,21(06):1-6. Cao Chuntang, Lan Zhiyong, Shen Fanxiang.Review of initial position angle detection in sensorless control system of permanent magnet synchronous motor[J]. Electrical Engineering, 2020,21(06):1-6. [5] Sreejith R, Singh B.Sensorless predictive current control of PMSM EV drive using DSOGI-FLL based sliding mode observer[J]. IEEE Transactions on Industrial Electronics, 2021, 68(7): 5537-5547. [6] 钟臻峰,金孟加,沈建新.基于分段PI调节器的模型参考自适应永磁同步电动机全转速范围无传感器控制[J].中国电机工程学报,2018,38(04):1203-1211+1297. Zhong Zhenfeng, Jin Mengjia, Shen Jianxin. Full Speed Range Sensorless Control of Permanent Magnet Synchronous Motor With Phased PI Regulator-Based Model Reference Adaptive System[J]. Proceedings of the CSEE, 2018,38(04): 1203-1211+1297 (in Chinese). [7] Po-Ngam S, Sangwongwanich S.Stability and dynamic performance improvement of adaptive full-order observers for sensorless PMSM drive[J]. IEEE Transactions on power electronics, 2012, 27(2): 588-600. [8] 赵希梅,武文斌,朱国昕.基于扩展卡尔曼滤波器的高速永磁直线同步电机扰动前馈补偿[J].电工技术学报,2018,33(07): 1516-1522. Zhao Ximei, Wu Wenbin, Zhu Guoxin.Disturbance Feed-Forward Compensation for High-Speed Permanent Magnet Linear Synchronous Motor Based on Extended Kalman Filter[J]. Transactions of China Electrotechnical Society, 2018,33(07): 1516-1522 (in Chinese). [9] 朱良红,张国强,李宇欣,等.基于级联扩张观测器的永磁电机无传感器自抗扰控制策略[J].电工技术学报,2022,37(18): 4614-4624. Zhu Lianghong, Zhang Guoqiang, Li Yuxin, et al.Active Disturbance Rejection Control for Position Sensorless Permanent Magnet Synchronous Motor Drives Based on Cascade Extended State Observer[J]. Transactions of China Electrotechnical Society, 2022,37(18): 4614-4624 (in Chinese). [10] 阙鸿杰,全力,张丽,等.基于自适应滤波器在线解耦的磁场增强型永磁电机无位置传感器控制[J].电工技术学报,2022,37(02):344-354. Que Hongjie, Quan Li, Zhang Li et al. Sensorless Control of Flux-Intensifying Permanent Magnet Synchronous Motor Based on Adaptive Notch Filter Online Decoupling[J]. Transactions of China Electrotechnical Society, 2022,37(02):344-354 (in Chinese). [11] 李冉,赵光宙,徐绍娟.基于扩展滑模观测器的永磁同步电动机无传感器控制[J].电工技术学报,2012,27(03):79-85. Li Ran, Zhao Guangzhou, Xu Shaojuan.Sensorless Control of Permanent Magnet Synchronous Motor Based on Extended Sliding Mode Observer[J]. Transactions of China Electrotechnical Society, 2012,27(03):79-85(in Chinese). [12] Wang G, Zhang G, Xu D.Position Sensorless Control Techniques for Permanent Magnet Synchronous Machine Drives[M]. Singapore: Springer, 2020. [13] 袁雷. 现代永磁同步电机控制原理及 MATLAB 仿真[M]. 北京航空航天大学出版社, 2016. [14] 陈勇,高玉文,陈章勇.一种自适应同步滤波器和正交锁相环相结合的滑模观测器[J].电工技术学报,2018,33(02):265-274. Chen Yong, Gao Yuwen, Chen Zhangyong.A Sliding Mode Observer Based on Combination of Adaptive Synchronization Filter and Quadrature Phase Locked Loop[J]. Transactions of China Electrotechnical Society, 2018,33(02):265-274 (in Chinese). [15] 王高林,李卓敏,詹瀚林,等.考虑逆变器非线性的内置式永磁同步电机转子位置锁相环观测器[J].电工技术学报,2014, 29(03):172-179. Wang Gaolin, Li Zhuomin, Zhan Hanlin, et al.Phase-Locked-Loop Rotor Position Observer for IPMSM Considering Inverter Nonlinearity[J]. Transactions of China Electrotechnical Society, 2014, 29(03):172-179 (in Chinese). [16] Wang G, Li Z, Zhang G, et al.Quadrature PLL-based high-order sliding-mode observer for IPMSM sensorless control with online MTPA control strategy[J]. IEEE Transactions on Energy Conversion, 2013, 28(1): 214-224. [17] 章春娟,王慧贞,刘伟峰,等.基于宽频带同步基频提取滤波器的永磁同步电机转子位置与转速估计[J].电工技术学报,2022,37(04):882-891. Zhang Chunjuan, Wang Huizhen, Liu Weifeng, et al.Rotor Position and Speed Estimation of Permanent Magnet Synchronous Motor Based on Wideband Synchronous Fundamental-Frequency Extraction Filter[J]. Transactions of China Electrotechnical Society, 2022,37(04):882-891 (in Chinese). [18] Wang Y, Bao X, Hua W, et al.Implementation of Embedded Magnetic Encoder for Rotor Position Detection Based on Arbitrary Phase-Shift Phase-Lock Loop[J]. IEEE Transactions on Industrial Electronics, 2022, 69(2): 2033-2043. [19] 顾聪,王晓琳,邓智泉.一种基于双重锁相环的高速永磁同步电机转子位置估计误差全补偿方法[J].中国电机工程学报,2020,40(03):962-970. Gu Cong, Wang Xiaolin, Deng Zhiquan.A Rotor Position Estimated Error Correction Method for High-speed Permanent Magnet Synchronous Motor Based on Dual-phase-locked-loop[J]. Proceedings of the CSEE, 2020,40(03):962-970 (in Chinese). [20] 王晓琳,刘思豪,顾聪.基于自适应基准锁相环的高速永磁电机转子位置误差全补偿方法[J].电工技术学报,2021,36(20): 4308-4317. Wang Xiaolin, Liu Sihao, Gucong. A Rotor Position Error Compensation Algorithm for High-Speed Permanent Magnet Motor Based on Phase-Locked Loop with Adaptive Reference[J]. Transactions of China Electrotechnical Society, 2021,36(20): 4308-4317(in Chinese). [21] Yin Z, Zhang Y, Cao X, et al.Estimated position error suppression using novel PLL for IPMSM sensorless drives based on full-order SMO[J]. IEEE Transactions on Power Electronics, 2022, 37(4): 4463-4474. [22] Wang G, Li T, Zhang G, et al.Position estimation error reduction using recursive-least-square adaptive filter for model-based sensorless interior permanent-magnet synchronous motor drives[J]. IEEE transactions on industrial electronics, 2014, 61(9): 5115-5125. [23] Wang G, Zhan H, Zhang G, et al.Adaptive Compensation Method of Position Estimation Harmonic Error for EMF-Based Observer in Sensorless IPMSM Drives[J]. IEEE Transactions on Power Electronics, 2014, 29(6):3055-3064. [24] Wu X, Yu X, Wu T, et al.Complex-Coefficient Synchronous Frequency Filter-Based Position Estimation Error Reduction for Sensorless IPMSM Drives[J]. IEEE Transactions on Power Electronics, 2022, 37(12): 15297-15307. [25] 魏海峰,韦汉培,张懿,等.基于转子磁链模型的永磁同步电机转子位置估计策略[J].电工技术学报,2018,33(13):2963-2971. Wei Haifeng, Wei Hanpei, Zhang Yi, et al.New Rotor Position Estimation Strategy for Permanent Magnet Synchronous Motor Based on Rotor Flux Model[J]. Transactions of China Electrotechnical Society, 2018,33(13):2963-2971 (in Chinese). [26] Sun X, Li T, Zhu Z, et al.Speed sensorless model predictive current control based on finite position set for PMSHM drives[J]. IEEE Transactions on Transportation Electrification, 2021, 7(4): 2743-2752. [27] Chen S, Ding W, Hu R, et al.Sensorless Control of PMSM Drives Using Reduced Order Quasi Resonant-Based ESO and Newton-Raphson Method-Based PLL[J]. IEEE Transactions on Power Electronics, 2023, 38(1):229-244. [28] 王明辉,徐永向,邹继斌.基于 ESO-PLL 的永磁同步电机无位置传感器控制[J/OL].中国电机工程学报. https://doi.org/10.13334/j.0258-8013.pcsee.211719 Wang Minghui, Xu Yongxiang, Zou Jibin. Sensorless Control for Permanent Magnet Synchronous Motor Based on ESO-PLL[J/OL]. Proceedings of the CSEE, https://doi.org/10.13334/j.0258-8013.pcsee.211719. (in Chinese). [29] Wang H, Yang Y, Ge X, et al.PLL-and FLL-based speed estimation schemes for speed-sensorless control of induction motor drives: Review and new attempts[J]. IEEE Transactions on Power Electronics, 2022, 37(3): 3334-3356. [30] 左运,葛兴来,李松涛,等.基于改进型q-PLL的牵引电机无速度传感器控制[J].中国电机工程学报,2021,41(01):383-392+427. Zuoyun, Gexinglai, Li Songtao, et al. Speed Sensorless Control of Traction Motor Based on the Improved q-PLL[J]. Proceedings of the CSEE, 2021,41(01):383-392+427. (in Chinese). [31] Jiang F, Sun S, Liu A, et al.Robustness improvement of model-based sensorless SPMSM drivers based on an adaptive extended state observer and an enhanced quadrature PLL[J]. IEEE Transactions on Power Electronics, 2021, 36(4): 4802-4814. [32] Li Z, Guo Y, Xia J, et al.Modified synchronized SVPWM strategies to reduce CMV for three-phase VSIs at low switching frequency[J]. IEEE Transactions on Industry Applications, 2020, 56(5): 5245-5256. [33] Liu G, Zhang H, Song X.Position-estimation deviation-suppression technology of PMSM combining phase self-compensation SMO and feed-forward PLL[J]. IEEE Journal of Emerging and Selected Topics in Power Electronics, 2021, 9(1): 335-344. [34] 刘计龙,肖飞,麦志勤,等.IF控制结合滑模观测器的永磁同步电机无位置传感器复合控制策略[J].电工技术学报,2018, 33(04):919-929. Liu Jilong, Xiao Fei, Mai Zhiqin, et al.Hybrid Position-Sensorless Control Scheme for PMSM Based on Combination of IF Control and Sliding Mode Observer[J]. Transactions of China Electrotechnical Society, 2018, 33(04):919-929. (in Chinese). [35] 张懿,吴嘉欣,韦汉培,等.离散型变增益永磁同步电机超螺旋滑模观测器[J].电工技术学报,2018,33(21):4962-4970. Zhang Yi, Wu Jiaxin, Wei Hanpei, et al.Discrete Variable Gain Super-Twisting Sliding Mode Observer for Permanent Magnet Synchronous Motor[J]. Transactions of China Electrotechnical Society, 2018,33(21):4962-4970. (in Chinese). [36] Golestan S, Monfared M, Freijedo F D, et al.Advantages and challenges of a type-3 PLL[J]. IEEE Transactions on Power Electronics, 2013, 28(11): 4985-4997.