Design Optimization of Multi-Layer Permanent Magnet Synchronous Machines for Electric Vehicle Applications

被引:7
|
作者
Cisse, Koua Malick [1 ]
Hlioui, Sami [2 ]
Belhadi, Mhamed [3 ]
Mermaz Rollet, Guillaume [3 ]
Gabsi, Mohamed [4 ]
Cheng, Yuan [5 ]
机构
[1] ENS Paris Saclay, CNRS, Grp PSA, SATIE, 61 Ave President Wilson, F-94230 Cachan, France
[2] CNRS, SATIE, Conservatoire Natl Arts & Metiers CNAM, 292 Rue St Martin, F-75003 Paris, France
[3] Stellantis, 212 Bd Pelletier, F-78955 Carrieres Sous Poissy, France
[4] Ecole Normale Super Paris Saclay, CNRS, SATIE, 61 Ave President Wilson, F-94230 Cachan, France
[5] Grp PSA, Route Gisy, F-78140 Velizy Villacoublay, France
关键词
synchronous machines; electric vehicles; hybrid electric vehicles; optimal design; multi-layer permanent magnet machines; MOTOR;
D O I
10.3390/en14217116
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
This paper presents a comparison between two design methodologies applied to permanent magnet synchronous machines for hybrid and electric vehicles (HEVs and EVs). Both methodologies are based on 2D finite element models and coupled to a genetic algorithm to optimize complex non-linear geometries such as multi-layer permanent magnet machines. To reduce the computation duration to evaluate Induced Voltage and Iron Losses for a given electrical machine configuration, a new methodology based on geometrical symmetries and magnetic symmetries are used and is detailed. Two electromagnetic models have been developed and used in the design stage. The first model was the stepped rotor position finite element analysis called abc model which considered the spatial harmonics without any approximation of the waveform of flux linkage inside the stator, and the second model was based on a fixed rotor position called dq model, with the approximation that the waveform of flux linkage inside the stator was sinuous. These two methodologies are applied to the design of a synchronous machine for HEVs and EVs applications. Design results and performances are analyzed, and the advantages and drawbacks of each methodology are presented. It was found that the dq model is at least 5 times faster than the abc model with high precision for both the torque and induce voltage evaluation in most cases. However, it is not the case for the iron losses computation. The iron loss model based on dq model is less accurate than the abc model with a relative deviation from the abc model greater than 70% at high control angle. The choice of the electromagnetic model during the optimization process will therefore influence the geometry and the performances of the obtained electrical machine after the optimization.
引用
收藏
页数:21
相关论文
共 50 条
  • [1] Design and Optimization of Permanent Magnet Synchronous Motor for Electric Vehicle Applications
    Levent, Ahmet Hamdi
    Lordoglu, Abdulsamed
    Aydeniz, Mustafa Gurkan
    2020 IEEE 2ND GLOBAL POWER, ENERGY AND COMMUNICATION CONFERENCE (IEEE GPECOM2020), 2020, : 148 - 151
  • [2] Design and Optimization of Permanent Magnet Brushless Machines for Electric Vehicle Applications
    Gu, Weiwei
    Zhu, Xiaoyong
    Quan, Li
    Du, Yi
    ENERGIES, 2015, 8 (12): : 13996 - 14008
  • [3] Design optimisation of permanent magnet assisted synchronous reluctance machines for electric vehicle applications
    Chen, L.
    Wang, J.
    Lombard, P.
    Lazari, P.
    Leconte, V.
    2012 XXTH INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES (ICEM), 2012, : 2647 - 2653
  • [4] Development of multi-layer interior permanent magnet synchronous machine for vehicle
    Lee, Sang-Yub
    Kwak, Sang-Yeop
    Seo, Jang-Ho
    Jung, Hyun-Kyo
    2007 INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES AND SYSTEMS, VOLS 1-4, 2007, : 1411 - 1414
  • [5] Design of Synchronous Reluctance and Permanent Magnet Synchronous Reluctance Machines for Electric Vehicle Application
    Guan, Y.
    Zhu, Z. Q.
    Afinowi, I. A. A.
    Mipo, J. C.
    Farah, P.
    2014 17TH INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES AND SYSTEMS (ICEMS), 2014, : 1853 - 1859
  • [6] Design of synchronous reluctance and permanent magnet synchronous reluctance machines for electric vehicle application
    Guan, Y.
    Zhu, Z. Q.
    Afinowi, I. A. A.
    Mipo, J. C.
    Farah, P.
    COMPEL-THE INTERNATIONAL JOURNAL FOR COMPUTATION AND MATHEMATICS IN ELECTRICAL AND ELECTRONIC ENGINEERING, 2016, 35 (02) : 586 - 606
  • [7] Optimization and Comparison of Optimal Saliency Permanent Magnet Synchronous Machines for Electric Vehicle Application
    Daguse, Benjamin
    Dessante, Philippe
    Vidal, Pierre
    Vannier, Jean-Claude
    Saint-Michel, Jacques
    Thomas, Jean-Luc
    PRZEGLAD ELEKTROTECHNICZNY, 2012, 88 (7B): : 119 - 122
  • [8] Permanent Magnet Synchronous Motor for Electric Vehicle Applications
    Loganayaki, A.
    Kumar, Bharani R.
    2019 5TH INTERNATIONAL CONFERENCE ON ADVANCED COMPUTING & COMMUNICATION SYSTEMS (ICACCS), 2019, : 1064 - 1069
  • [9] Design of multi-layer PCB coreless axial permanent magnet synchronous motor
    Wang, Xiaoguang
    Hu, Cangxian
    Zhao, Meng
    Wu, Lei
    Zhou, Sheng
    2019 22ND INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES AND SYSTEMS (ICEMS 2019), 2019, : 2505 - 2508
  • [10] Optimal design of permanent magnet brushless AC machines for electric vehicle applications
    Schofield, N
    Giraud-Audine, C
    Powell, DJ
    Howe, D
    INTERNATIONAL JOURNAL OF APPLIED ELECTROMAGNETICS AND MECHANICS, 2001, 15 (1-4) : 143 - 148