Abstract:Based on the analysis of interior permanent magnet synchronous motors (IPMSM) mathematical model, the process of field-weakening control is studied in detail. A piece-wise linearization field-weakening control strategy is proposed in this paper. According to the characteristic of field-weakening control at different stages, the field-weakening control is divided into three areas, and all of the three areas are linearized respectively. The d-axis and q-axis current of working points, and control equation of the three field-weakening areas are got respectively. The linearized field-weakening control strategy saves the computation time of working point, improves the real-time performance of the system, and can realize maximum torque output. The test results prove that the IPMSM has better speed performance in wide speed regulating range by the use of the piece-wise linearization field-weakening control strategy. And the IPMSM is more controllable and has higher reliability.
[1] Chang Yuan Chih, Chan Jui Teng, Chen Jian Cheng, et al. Development of permanent magnet synchronous generator drive in electrical vehicle power system[C]. IEEE Vehicle Power and Propulsion Conference, 2012: 115-118. [2] 韩建群, 郑萍. 一种用于电动汽车的永磁同步电机直接转矩控制的简化方法[J]. 电工技术学报, 2009, 24(1): 76-80. Han Jianqun, Zheng Ping. A simplified direct torque control method of PMSM applied in electric vehicle [J]. Transactions of China Electrotechnical Society, 2009, 24(1): 76-80. [3] Jahns T M, Kliman G B, Neumann T W. Interior permanent-magnet synchronous motors for adjustable- speed drives[J]. IEEE Transactions on Industry Applications, 1986, 22(4): 738-747. [4] Soong W L, Miller T J E. Theoretical limitations to the field-weakening performance of the five classes of brushless synchronous ac motor drive[C]. IEEE Sixth International Conference on Electrical Machines and Drives, 1993: 127-132. [5] Rahman M A, Osheiba A M, Kurihara K, et al. Advances on single-phase line-start high efficiency interior permanent magnet motors[J]. IEEE Transactions on Industrial Electronics, 2012, 59(3): 1333-1345. [6] Pellegrino G, Armando E, Guglielmi P. Direct flux vector control of IPM motor drives in the maximum torque per voltage speed range[J]. IEEE Transactions on Industrial Electronics, 2012, 59(10): 3780-3788. [7] Pan C T, Sue S M. A linear maximum torque per ampere control for IPMSM drives over full-speed range[J]. IEEE Transactions on Energy Conversion, 2005, 20(2): 359-366. [8] Lenke R U, De Doncker R W, Kwak M S, et al. Field weakening control of interior permanent magnet machine using improved current interpolation technique [C]. 37th IEEE Power Electronics Specialists Con- ference, 2006: 1-5. [9] Abroshan M, Milimonfared J, Malekian K, et al. An optimal control for saturated interior permanent magnet linear synchronous motors incorporating field weakening[C]. 13th International Power Electronics and Motion Control Conference, 2008: 1117-1122. [10] Xu Longya, Zhang Yuan, Guven M K. A new method to optimize q-axis voltage for deep flux weakening control of IPM machines based on single current regulator[C]. International Conference on Electrical Machines and System (ICEMS), Wuhan, China, 2008: 2750-2754. [11] 盛义发, 喻寿益, 桂卫华, 等. 轨道车辆用永磁同步电机系统弱磁控制策略[J]. 中国电机工程学报, 2010, 30(9): 74-79. Sheng Yifa, Yu Shouyi, Gui Weihua, et al. Field weakening operation control strategies of permanent magnet synchronous motor for railway vehicles[J]. Proceedings of the CSEE, 2010, 30(9): 74-79. [12] 白玉成, 唐小琦, 吴功平. 内置式永磁同步电机弱磁调速控制[J]. 电工技术学报, 2011, 26(9): 54-59. Bai Yucheng, Tang Xiaoqi, Wu Gongping. Speed control of flux weakening on interior permanent magnet synchronous motors[J]. Transactions of China Electrotechnical Society, 2011, 26(9): 54-59. [13] Bolognani S, Calligaro S, Petrella R. Optimal voltage feed-back flux-weakening control of IPMSM[C]. IEEE 37th Annual Conference of the Industrial Electronics Society, 2011: 4170-4175. [14] Uddin M N, Rebeiro R S. Online efficiency optimiz- ation of a fuzzy-logic-controller-based IPMSM drive[J]. IEEE Transactions on Industry Applications, 2011, 47(2): 1043-1050. [15] 唐任远, 李振标. 现代永磁电机理论与设计[M]. 北京: 机械工业出版社, 1997.