Design and Optimization of IPM Motor Considering Flux Weakening Capability and Vibration for Electric Vehicle Applications

被引:21
作者
Ma, Fangwu [1 ]
Yin, Hongbin [1 ]
Wei, Lulu [1 ]
Tian, Guangdong [1 ]
Gao, Hui [2 ]
机构
[1] Jilin Univ, State Key Lab Automot Simulat & Control, Changchun 130000, Jilin, Peoples R China
[2] China Automot Technol & Res Ctr Co Ltd, Tianjin 300300, Peoples R China
基金
美国国家科学基金会;
关键词
IPM; flux-weakening capability; vibration; cogging torque; torque ripple; radical vibration force; PERMANENT-MAGNET MOTOR; IMPROVEMENT; MODEL;
D O I
10.3390/su10051533
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
As motor design is key to the development of electric vehicles (EVs) and hybrid EVs (HEVs), it has recently become the subject of considerable interest. Interior permanent magnet (IPM) motors offer advantages such as high torque density and high efficiency, benefiting from both permanent magnet (PM) torque and reluctance torque. However an obvious disadvantage of IPM motors is that operation at high speed involves difficulties in achieving the required flux-weakening capability and low vibration. This study focuses on optimizing the flux-weakening performance and reducing the vibration of an IPM motor for EVs. Firstly, flux-weakening capability, cogging torque, torque ripple, and radical vibration force are analyzed based on the mathematical model. Secondly, three kinds of motors are optimized by the genetic algorithm and analyzed, providing visible insights into the contribution of different rotor structures to the torque characteristics, efficiency, and extended speed range. Thirdly, a slotted rotor configuration is proposed to reduce the torque ripple and radical vibration force. The flux density distributions are discussed, explaining the principle that motors with slotted rotors and stator skew slots have smaller torque ripple and radical vibration force. Lastly, the design and optimization results have been validated against experiments.
引用
收藏
页数:15
相关论文
共 22 条
[1]   Design and Tests of a Four-Layer Fractional-Slot Interior Permanent-Magnet Motor [J].
Bianchi, Nicola ;
Alberti, Luigi ;
Barcaro, Massimo .
IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 2016, 52 (03) :2234-2240
[2]  
Burress T.A., 2011, Evaluation of The 2010 Toyota Prius Hybrid Synergy Drive System
[3]   Quantitative Comparison of Flux-Switching Permanent-Magnet Motors With Interior Permanent Magnet Motor for EV, HEV, and PHEV Applications [J].
Cao, Ruiwu ;
Mi, Chris ;
Cheng, Ming .
IEEE TRANSACTIONS ON MAGNETICS, 2012, 48 (08) :2374-2384
[4]   Design of robust battery capacity model for electric vehicle by incorporation of uncertainties [J].
Garg, Akhil ;
Vijayaraghavan, V. ;
Zhang, Jian ;
Li, Shui ;
Liang, Xinyu .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2017, 41 (10) :1436-1451
[5]   Robust model design for evaluation of power characteristics of the cleaner energy system [J].
Garg, Akhil ;
Vijayaraghavan, Venkatesh ;
Zhang, Jian ;
Lam, Jasmine Siu Lee .
RENEWABLE ENERGY, 2017, 112 :302-313
[6]  
Hsu J., 2004, REPORT TOYOTA PRIUS
[7]   Methodology for the analysis of a 4-stroke moped emission behaviour [J].
Iodice, P. ;
Senatore, A. ;
Meccariello, G. ;
Prati, M. V. .
SAE INTERNATIONAL JOURNAL OF ENGINES, 2009, 2 (02) :617-626
[8]   Atmospheric pollution from point and diffuse sources in a National Interest Priority Site located in Italy [J].
Iodice, Paolo ;
Senatore, Adolfo .
ENERGY & ENVIRONMENT, 2016, 27 (05) :586-596
[9]   Assessment of torque components in brushless permanent-magnet machines through numerical analysis of the electromagnetic field [J].
Ionel, DA ;
Popescu, M ;
McGilp, MI ;
Miller, TJE ;
Dellinger, SJ .
IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 2005, 41 (05) :1149-1158
[10]   Pulsating torque minimization techniques for permanent magnet AC motor drives - A review [J].
Jahns, TM ;
Soong, WL .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 1996, 43 (02) :321-330