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Received:30 December 2024,
Published:10 October 2025
移动端阅览
ZHAO Shengdun, CAO Yangfeng, MA Changxin, et al. Main Drive Motors of Modern New Energy Vehicles and Their Development Trend[J]. Journal of Xi'an Jiaotong University, 2025, 59(10): 1-21.
ZHAO Shengdun, CAO Yangfeng, MA Changxin, et al. Main Drive Motors of Modern New Energy Vehicles and Their Development Trend[J]. Journal of Xi'an Jiaotong University, 2025, 59(10): 1-21. DOI: 10.7652/xjtuxb202510001.
电机是新能源汽车电机、电池、电控“三电”中最重要的部件,但是目前关于现代新能源汽车用主驱动电机类型及其关键技术问题缺乏系统深入的论述。基于此该文对新能源汽车驱动电机类型做了分类,其中的直流电机、交流永磁同步电机、磁阻电机以及交流异步感应电机这4种类型电机是目前新能源汽车使用的主流,并对每种驱动电机的现状及使用的关键技术等做了充分说明,进一步论述了这4种类型电机的具体机械结构、应用的汽车企业和车型、每种电机的优缺点等,充分详细地展示了新能源汽车电驱动及其相关技术的设计思想。研究结果表明:交流径向磁通永磁同步电机、轴向磁通永磁同步电机和交流异步电机具有更好的综合性能,是未来新能源汽车主驱动电机的主要类型。另外,对4、8极的变极交流异步铜转子感应电动机特性进行了简要的论述,结果表明该电机也有较好的使用前景。通过多方面系统深入分析主驱动电机的发展趋势后明确指出,未来的新能源汽车主驱动电机应朝着供电电压高压化、高转速化、低噪声振动和不平顺(NVH)化、高功率密度化、材料高强度高导磁化、电机减速机及驱动控制一体化、电机转速传感的低成本高可靠以及驱动控制器高频高效化方向发展。
The motor is the most critical component among the “three electric systems” (motor
battery
and electronic control) of new energy vehicles (NEVs).However
there is currently a lack of systematic and in-depth discussion and classification regarding the types of main drive motors used in modern NEVs and their key technical issues. To address this
this study first investigates and categorizes the types of drive motors for NEVs
identifying four dominant types currently in use: DC motors
AC permanent magnet synchronous motors (PMSMs)
reluctance motors
and AC asynchronous induction motors. Furthermore
a comprehensive explanation of the current status and key technologies of these four types of drive motors is provided. The specific mechanical structures of each motor
the automotive manufacturers and vehicle models that employ them
as well as their respective advantages and disadvantages are discussed. This detailed analysis thoroughly presents the design philosophy behind NEV electric drive systems and related technologies. The research results indicate that AC radial-flux PMSMs
axial-flux PMSMs
and AC asynchronous motors exhibit superior comprehensive performance and are likely to dominate as the main types of drive motors for future NEVs. Additionally
the characteristics of 4-pole and 8-pole variable-pole AC asynchronous copper-rotor induction motors are briefly examined
demonstrating their promising application prospects. Finally
through a systematic and in-depth analysis of the development trends of main drive motors
this study clearly concludes that future NEV drive motors should evolve in the following directions: higher supply voltages
increasingly higher rotational speeds
lower noise vibration and harshness (NVH)
greater power density
use of high-strength and high-permeability materials
integration of motors with gear reducers and drive controllers
cost-effective and highly reliable motor speed sensing
and highfrequency
high-efficiency drive controllers.
YU Ke , ZHANG Weimei , ZHANG Yalian . Carbon performance evaluation of automobile manufacturing industry in green supply chain [C ] // 2019 International Conference on Robots & Intelligent System (IC-RIS) . Piscataway,NJ,USA : IEEE , 2019 : 405 - 408 .
CONLON B , ANWAR M , SEVEL K , et al . Switch able 400 V/800 V high voltage architecture for Ultium battery electric trucks [C ] // 2022 IEEE Energy Conversion Congress and Exposition . Piscataway,NJ, USA : IEEE , 2022 : 1 - 6 .
LÓPEZ I , IBARRA E , MATALLANA A , et al . Next generation electric drives for HEV/EV propulsion systems:technology,trends and challenges [J ] . Renewable and Sustainable Energy Reviews , 2019 , 114 : 109336 .
郭建龙 , 陈世元 . 电动汽车驱动用电机的选择 [J ] . 汽车电器 , 2007 ( 1 ): 9 - 12 .
GUO Jianlong , CHEN Shiyuan . How to choose driving motor for electric vehicle [J ] . Auto Electric Parts , 2007 ( 1 ): 9 - 12 .
阎治安 , 崔新艺 , 苏少平 . 电机学 [M ] . 2版 . 西安 : 西安交通大学出版社 , 2006 .
XIAO Y , NEMEC M , BORLE L J , et al . Regenerative braking of series-wound brushed DC electric motors for electric vehicles [C ] // 2012 7th IEEE Conference on Industrial Electronics and Applications . Piscataway,NJ, USA : IEEE , 2012 : 1657 - 1662 .
凯驰电动车 . 2座高尔夫车 [EB/OL ] .[ 2024-08-08 ] . https://www.kcdd.cn/h-pd-117.html .
时维国 , 桑尧尧 . 空间矢量调制的PMSM变磁链直接转矩控制 [J ] . 大连交通大学学报 , 2019 , 40 ( 6 ): 98 - 103 .
SHI Weiguo , SANG Yaoyao . Direct torque control with variable of PMSM magnetic flux based on space vector modulation [J ] . Journal of Dalian Jiaotong University , 2019 , 40 ( 6 ): 98 - 103 .
SpaceXSF . 特斯拉Model S Plaid电机拆解内部结构详细分析:PART 2 [EB/OL ] .( 2022-10-21 )[ 2024-08-20 ] . https://www.bilibili.com/video/BV14d4y127nd/?vd_source=9d77e150138e0e355a5de5506a9ff05a .
WILEY C , TALEBI D , SANKARRAMAN S V , et al . Design of a carbon fiber rotor in a dual rotor axial flux motor for electric aircraft [C ] // 2022 IEEE Energy Conversion Congress and Exposition . Piscataway, NJ,USA : IEEE , 2022 : 1 - 8 .
HUFFMAN J P . Dossier:2022 Tesla Model S Plaid [J ] . Road and Track , 2022 , 72 ( 9 ): 128 - 136 .
Tomiefox . 大众ID.4电机拆解 [EB/OL ] .( 2021-08-15 )[ 2024-08-26 ] . https://www.bilibili.com/video/BV1bo4y1U72Z/?spm_id_from=333.337.search-card.all.click&vd_source=9d77e150138e0e355a5de5506a9ff05a .
LIU Chuan , XU Zeyuan , GERADA D , et al . Experimental investigation on oil spray cooling with hairpin windings [J ] . IEEE Transactions on Industrial Elec tronics , 2020 , 67 ( 9 ): 7343 - 7353 .
BERARDI G , NATEGH S , BIANCHI N , et al . A comparison between random and hairpin winding in e-mobility applications [C ] // The 46th Annual Conference of the IEEE Industrial Electronics Society . Piscataway,NJ,USA : IEEE , 2020 : 815 - 820 .
DONG Tenghui , ZHU Chong , ZHANG Xi , et al . Hybrid-strand winding topology with improved power density in automotive electric machines [J ] . IEEE Transactions on Industrial Electronics , 2022 , 69 ( 6 ): 6036 - 6045 .
梁艳萍 , 柳杨 , 王晨光 . 大型水轮发电机定子绕组新型组合换位方法分析 [J ] . 中国电机工程学报 , 2016 , 36 ( 11 ): 3092 - 3100 .
LIANG Yanping , LIU Yang , WANG Chenguang . Analysis on a new method of combination transposition for the stator wingdings of the hydro-generators [J ] . Proceedings of the CSEE , 2016 , 36 ( 11 ): 3092 - 3100 .
LIU Jia , LIANG Yanping , YANG Peipei . Research on novel flat wire transposed winding of PMSM for electric vehicle [J ] . IEEE Transactions on Transportation Electrification , 2023 , 9 ( 1 ): 771 - 781 .
JU Xiaowei , CHENG Yuan , DU Bochao , et al . AC loss analysis and measurement of a hybrid transposed hairpin winding for EV traction machines [J ] . IEEE Transactions on Industrial Electronics , 2023 , 70 ( 4 ): 3525 - 3536 .
SARLIOGLU B , MORRIS C T , HAN Di , et al . Driving toward accessibility:a review of technological improvements for electric machines,power electronics,and batteries for electric and hybrid vehicles [J ] . IEEE Industry Applications Magazine , 2017 , 23 ( 1 ): 14 - 25 .
SANO S , YASHIRO T , TAKIZAWA K , et al . Development of new motor for compact-class hybrid vehicles [J ] . World Electric Vehicle Journal , 2016 , 8 ( 2 ): 443 - 449 .
CUI Wei , REN Lingchen , ZHOU Jincheng , et al . A new IPMSM with hybrid rotor structure for electrical vehicle with reduced magnet loss [J ] . IEEE Transactions on Magnetics , 2022 , 58 ( 2 ): 1 - 6 .
CHEN Hao , DEMERDASH N A O , EL-REFAIE A M , et al . Investigation of a 3D-magnetic flux PMSM with high torque density for electric vehicles [J ] . IEEE Transactions on Energy Conversion , 2022 , 37 ( 2 ): 1442 - 1454 .
HAN Chunlei , ZHU Xiaoyong , FAN Deyang , et al . Multilevel and multi-objective optimization and design of double V-shaped in-wheel permanent magnet motor for high torque density and quality [C ] // 2023 26th International Conference on Electrical Machines and Systems . Piscataway,NJ,USA : IEEE , 2023 : 3227 - 3231 .
天马行空 . 工程师科普系列:比亚迪海狮07EV三电技术解读 [EB/OL ] .( 2024-05-11 )[ 2024-08-28 ] . https://zhuanlan.zhihu.com/p/697245825 .
汽车之家Live . 安心驾享红旗EH7上市发布会 [EB/OL ] .( 2024-03-20 )[ 2024-08-30 ] . https://live.autohome.com.cn/live/902411/ .
智能制造IM . 小米汽车核心技术:高速电机技术 [EB/OL ] . ( 2024-06-05 )[ 2024-08-30 ] . https://www.eet-china.com/mp/a320331.html .
DLALA E . Hybrid rotor assembly:US 2020/0412190 A1 [P ] . 2020-12-31 .
DLALA E , BISKUP R J , MOSELEY D , et al . Motor cooling system utilizing axial cooling channels:US 10, 128,701 B2 [P ] . 2018-11-13 .
保时捷(中国)汽车销售有限公司 . 高电压:详解保时捷电驱动系统 [EB/OL ] .( 2021-09-22 )[ 2024-09-01 ] . https://newsroom.porsche.com/zh/2021/technology/cn-porsche-electric-motors-taycan-high-voltagechristophorus-398-25829.html .
ST-JACQUES B B , SHI Ruisheng , PILLAY P . An enhanced PMSM cooling design for traction of an electric vehicle [J ] . IEEE Transactions on Transportation Electrification , 2024 , 10 ( 2 ): 3845 - 3854 .
西安交通大学 . 一种四电机与WW轮系组合式轮毂电机装置:CN 202411571780.5 [P ] . 2024-12-17 .
冯佳 . 车用定子无磁轭模块化轴向磁通轮毂电机的设计与优化 [D ] . 哈尔滨 : 哈尔滨工业大学 , 2022 .
JIA Lun , LIN Mingyao , LIN Keman , et al . Design and analysis of axial-flux modular spoke-type permanent magnet machines with segmented stators for traction applications [J ] . IEEE Transactions on Transportation Electrification , 2024 , 10 ( 2 ): 4290 - 4301 .
ZHANG Guangquan , TANG Lei , PENG Liang . Cooling system,stator assembly,and axial magnetic field motor:US 2022/0115924 A1 [P ] . 2022-04-14 .
GENG Weiwei , WANG Yu , WANG Jing , et al . Comparative study of yokeless stator axial-flux PM machines having fractional slot concentrated and integral slot distributed windings for electric vehicle traction applications [J ] . IEEE Transactions on Industrial Electronics , 2023 , 70 ( 1 ): 155 - 166 .
HILLMAN T , PHILLIPS R , WOOLMER T . Axial flux machine shoe optimisation:US 2022/0239210 A1 [P ] . 2022-07-28 .
YASA有限公司 . 电机过模制构造:CN 201180050741. 5 [P ] . 2016-08-03 .
电动生活 . 法拉利首款2.9T V6插混超跑296GTB亮点及技术解析 [EB/OL ] .( 2021-10-13 )[ 2021-10-13 ] . https://news.qq.com/rain/a/20211013A031 EI00 .
YASA Limited . The Lamborghini Temerario:twinturbo V8 hybrid powertrain [EB/OL ] .[ 2024-09-09 ] . https://yasa.com/applications/lamborghini-temerario/ .
ANVARI B , GUEDES-PINTO P , LEE R A . Printed circuit board stator axial field rotary energy device with ferromagnetic yoke:US 2023/0352999 A1 [P ] . 2023-11-02 .
SCHULER B L , LEE R , RASMUSSEN J . System and apparatus for axial field rotary energy device:US 11,177,726 B2 [P ] . 2021-11-16 .
LEIJNEN P . Stator for an axial flux machine:US 2022/0302773 A1 [P ] . 2022-09-22 .
HENDRIK V , PETER S , PETER L . Stator for an axial flux machine and method for producing the same:EP 3 485 558 B1 [P ] . 2019-12-18 .
CHANG Jiujian , FAN Yanen , WU Jinglai , et al . A yokeless and segmented armature axial flux machine with novel cooling system for In-Wheel traction applications [J ] . IEEE Transactions on Industrial Electronics , 2021 , 68 ( 5 ): 4131 - 4140 .
ZHANG B , SEIDLER T , DIERKEN R , et al . Development of a yokeless and segmented armature axial flux machine [J ] . IEEE Transactions on Industrial Electronics , 2016 , 63 ( 4 ): 2062 - 2071 .
DI GERLANDO A , FOGLIA G M , IACCHETTI M F , et al . Parasitic currents in stray paths of Some topologies ofYASA AFPMmachines:trend with machine size [J ] . IEEE Transactions on Industrial Electronics , 2016 , 63 ( 5 ): 2746 - 2756 .
BHAUSAHEB R M . Speed control of SRM for hybrid electric vehicle using artificial intelligence [C ] // 2021 12th International Conference on Computing Communication and Networking Technologies . Piscataway,NJ, USA : IEEE , 2021 : 1 - 5 .
AJIE I K , FURQANI J , FADILLAH A . Optimization of switched reluctance motor for two wheels electric vehicle [C ] // 2023 International Conference on Electrical Engineering and Informatics . Piscataway, NJ, USA : IEEE , 2023 : 1 - 6 .
Turntide . Driving the future [EB/OL ] .[ 2024-09-18 ] . https://turntide.com/industries/light-vehicles .
YU Fengyuan , CHEN Hao , YAN Wenju , et al . Design and multiobjective optimization of a double-stator axial flux SRM with full-pitch winding configuration [J ] . IEEE Transactions on Transportation Electrification , 2022 , 8 ( 4 ): 4348 - 4364 .
ALI N , NARIMANI M . Fault-tolerant SRM drives:a review [J ] . IEEE Transactions on Power Electronics , 2024 , 39 ( 8 ): 10261 - 10275 .
SUN Xiaodong , WAN Bingkuan , LEI Gang , et al . Multiobjective and multiphysics design optimization of a switched reluctance motor for electric vehicle applications [J ] . IEEE Transactions on Energy Conversion , 2021 , 36 ( 4 ): 3294 - 3304 .
LIU X , ZHU Z Q . Stator/rotor pole combinations and winding configurations of variable flux reluctance machines [J ] . IEEE Transactions on Industry Applications , 2014 , 50 ( 6 ): 3675 - 3684 .
ZHANG Wentao , WU Zhongze , HUA Wei , et al . Reduction of open-circuit DC winding induced voltage and torque pulsation in the wound field switched flux machine by stator axial pairing of tooth tips [J ] . IEEE Transactions on Industry Applications , 2022 , 58 ( 2 ): 1976 - 1990 .
WU Z Z , ZHU Z Q , WANG C , et al . Reduction of Open-circuit DC-winding-induced voltage in wound field switched flux machines by skewing [J ] . IEEE Transactions on Industrial Electronics , 2019 , 66 ( 3 ): 1715 - 1726 .
RAUCH S E , JOHNSON L J . Design principles of Flux-Switch alternators[includes discussion] [J ] . Transactions of the American Institute of Electrical Engineers:Part Ⅲ Power Apparatus and Systems , 1955 , 74 ( 3 ): 1261 - 1268 .
CHEN J T , ZHU Z Q , IWASAKI S , et al . Influence of slot opening on optimal stator and rotor pole combination and electromagnetic performance of Switched-Flux PM brushless AC machines [J ] . IEEE Transactions on Industry Applications , 2011 , 47 ( 4 ): 1681 - 1691 .
CHEN J T , ZHU Z Q , IWASAKI S , et al . A novel E-core switched-flux PM brushless AC machine [J ] . IEEE Transactions on Industry Applications , 2011 , 47 ( 3 ): 1273 - 1282 .
ZHU Z Q , CHEN J T , PANG Y , et al . Analysis of a novel multi-tooth flux-switching PM brushless AC machine for high torque direct-drive applications [J ] . IEEE Transactions on Magnetics , 2008 , 44 ( 11 ): 4313 - 4316 .
HUA Wei , CHENG Ming , ZHANG Gan . A novel hybrid excitation flux-switching motor for hybrid vehi cles [J ] . IEEE Transactions on Magnetics , 2009 , 45 ( 10 ): 4728 - 4731 .
FEI Weizhong , LUK P C K , SHEN Jianxin , et al . A novel permanent-magnet flux switching machine with an outer-rotor configuration for in-wheel light traction applications [J ] . IEEE Transactions on Industry Applications , 2012 , 48 ( 5 ): 1496 - 1506 .
PU Yun , XIANG Zixuan , JIANG Min , et al . Investigation on electromagnetic torque of a flux-switching permanent magnet motor from perspective of flux density harmonic reduction ratio [J ] . IEEE Transactions on Magnetics , 2022 , 58 ( 2 ): 1 - 6 .
XIANG Zixuan , ZHU Xiaoyong , QUAN Li , et al . Multilevel design optimization and operation of a brushless double mechanical port flux-switching permanent-magnet motor [J ] . IEEE Transactions on Industrial Electronics , 2016 , 63 ( 10 ): 6042 - 6054 .
CAO Ruiwu , MI C , CHENG Ming . Quantitative comparison of flux-switching permanent-magnet motors with interior permanent magnet motor for EV, HEV,and PHEV applications [J ] . IEEE Transactions on Magnetics , 2012 , 48 ( 8 ): 2374 - 2384 .
ZHAO Guishu , HUA Wei , QI Ji . Comparative study of wound-field flux-switching machines and switched reluctance machines [J ] . IEEE Transactions on Industry Applications , 2019 , 55 ( 3 ): 2581 - 2591 .
苏鹏 . 电动汽车用模块化转子永磁型磁通切换电机分析与设计 [D ] . 南京 : 东南大学 , 2019 .
LYONS D , STRAUBEL J B , SHAHOIAN E , et al . Rotor design for an electric motor:US 2013/0069476 A1 [P ] . 2013-03-21 .
Lea1251 . 奥迪e-Tron电机展示高清无码 [EB/OL ] . ( 2020-07-02 )[ 2024-10-10 ] . https://www.bilibili.com/video/BV1 Uz411e7Cr/?spm_id_from=333.337.searchcard.all.click&vd_source=9d77e150138e0e355a5de5506 a9ff05 a .
蔚来_NIO . 直播回放:蔚来碳化硅电机全网首拆 [EB/OL ] .( 2022-07-20 )[ 2024-10-19 ] . https://www.bilibili.com/video/BV1ZW4y1m7gx/?spm_id_from=333.337.search-card.all.click&vd_source=9d77e150138 e0e355a5de5506a9ff05a .
EDT电驱时代 . 国内外电驱汇总:(1)奔驰EQC/宝马IX3/奥迪etron [EB/OL ] .( 2021-02-12 )[ 2024-10-19 ] . https://baijiahao.baidu.com/s?id=16915026476157 03778 .
CHOUREY S , BOSE S , SUNDARAM S . An induction motor loss optimization approach using JMAG and MATLAB for an electric vehicle [C ] // 2022 Interdisci plinary Research in Technology and Management . Piscataway,NJ,USA : IEEE , 2022 : 1 - 5 .
POPESCU M , DI LEONARDO L , FABRI G , et al . Design of induction motors with flat wires and copper rotor for E-vehicles traction system [J ] . IEEE Transactions on Industry Applications , 2023 , 59 ( 3 ): 3889 - 3900 .
UMESH B S , SIVAKUMAR K . Multilevel inverter scheme for performance improvement of pole-phasemodulated multiphase induction motor drive [J ] . IEEE Transactions on Industrial Electronics , 2016 , 63 ( 4 ): 2036 - 2043 .
REZAZADEH G , TAHAMI F , CAPOLINO G A , et al . Improved design of an outer rotor six-phase induction motor with variable turn pseudo-concentrated windings [J ] . IEEE Transactions on Energy Conversion , 2022 , 37 ( 2 ): 1020 - 1029 .
HULYY M . Comparison of the energy efficiency of induction and PMSM electric drives with a 7.5 kW output power for ventilation systems [C ] // 2023 IEEE5th International Conference on Modern Electrical and Energy System . Piscataway,NJ,USA : IEEE , 2023 : 1 - 4 .
THOMAS R , GARBUIO L , GERBAUD L , et al . Modeling and design analysis of the Tesla Model S induction motor [C ] // 2020 International Conference on Electrical Machines . Piscataway,NJ,USA : IEEE , 2020 : 495 - 501 .
ANWAR M , BAVILI A , BADAWI R , et al . High voltage DC bus architecture for ultium battery electric vehicles [C ] // 2022 IEEE Energy Conversion Congress and Exposition . Piscataway,NJ,USA : IEEE , 2022 : 1 - 6 .
OZCELIK N G , ERGENE L T . An improved method for reduction of voltage distortion in IPM EV motors for a better flux weakening capability [J ] . IEEE Access , 2024 , 12 : 20125 - 20137 .
宇六合 . 比亚迪3万转电机总成发布,量产最快电机! [EB/OL ] .[ 2024-12-20 ] . https://www.bilibili.com/video/BV1iSXKYEEuF/?spm_id_from=333.1391.0.0&vd_source=9d77e150138e0e355a5de5506a9ff05a .
唐任远 . 现代永磁电机:理论与设计 [M ] . 北京 : 机械工业出版社 , 1997 .
程朝阳 , 钟柏林 , 倪正轩 , 等 . 新能源汽车驱动电机用高强无取向硅钢力、磁性能调控研究进展 [J ] . 工程科学学报 , 2023 , 45 ( 9 ): 1482 - 1492 .
CHENG Zhaoyang , ZHONG Bailin , NI Zhengxuan , et al . Research progress on simultaneous control of mechanical and magnetic properties of high-strength non-oriented silicon steel for new energy vehicle driving motors [J ] . Chinese Journal of Engineering , 2023 , 45 ( 9 ): 1482 - 1492 .
CAO Yangfeng , ZHAO Shengdun . Control and design of pole-changing motor driver [C ] // 2023 IEEE9th International Conference on Cloud Computing and Intelligent Systems . Piscataway,NJ,USA : IEEE , 2023 : 335 - 340 .
曹杨峰 , 刘大洲 , 赵升吨 , 等 . 变极电机与双联行星减速组合式电动汽车驱动传动新原理及动态特性 [J ] . 西安交通大学学报 , 2025 , 59 ( 4 ): 27 - 39 .
CAO Yangfeng , LIU Dazhou , ZHAO Shengdun , et al . New principle and dynamic characteristics of electric vehicles drive transmission combining variable-pole motor and duplex planetary reducer [J ] . Journal of Xi'an Jiaotong University , 2025 , 59 ( 4 ): 27 - 39 .
GIERAS J F , WANG Chong , LAI J C . Noise of polyphase electric motors [M ] . Boca Raton,FL,USA : CRC Press , 2006 .
DENG Wenzhe , ZUO Shuguang . Electromagnetic vibration and noise of the permanent-magnet synchronous motors for electric vehicles:an overview [J ] . IEEE Transactions on Transportation Electrification , 2019 , 5 ( 1 ): 59 - 70 .
王晓远 , 贺晓钰 , 高鹏 . 电动汽车用Ⅴ型磁钢转子永磁电机的电磁振动噪声削弱方法研究 [J ] . 中国电机工程学报 , 2019 , 39 ( 16 ): 4919 - 4926 .
WANG Xiaoyuan , HE Xiaoyu , GAO Peng . Research on electromagnetic vibration and noise reduction method of Ⅴ type magnet rotor permanent magnet motor electric vehicles [J ] . Proceedings of the CSEE , 2019 , 39 ( 16 ): 4919 - 4926 .
陈致初 , 史俊旭 , 周洋 , 等 . 车用永磁同步电机的电磁噪声优化研究 [J ] . 微电机 , 2023 , 56 ( 10 ): 77 - 82 .
CHEN Zhichu , SHI Junxu , ZHOU Yang , et al . Research on the NVH optimization of vehicle IPM motor [J ] . Micromotors , 2023 , 56 ( 10 ): 77 - 82 .
汇川联合动力 . 定子一体化注塑技术可以解决哪些行业难题? [EB/OL ] .[ 2024-12-28 ] . https://mp.weixin.qq.com/s/n-OY6d8-w1wBPxsoY3 LNQQ .
HAIYAN Zhang , DAWEI Chen , YU Liu . Research on key influencing factors of endurance mileage of battery electric vehicle [C ] // 2022 7th Asia Conference on Power and Electrical Engineering . Piscataway,NJ, USA : IEEE , 2022 : 235 - 239 .
刘阳 , 徐党委 , 王海燕 , 等 . 新能源汽车驱动电机用无取向硅钢现状与发展趋势 [J ] . 河南冶金 , 2024 , 32 ( 6 ): 11 - 13 .
LIU Yang , XU Dangwei , WANG Haiyan , et al . Status quo and development trend of non-oriented silicon steel for new energy vehicle drive motors [J ] . Henan Metallurgy , 2024 , 32 ( 6 ): 11 - 13 .
朱诚意 , 鲍远凯 , 汪勇 , 等 . 新能源汽车驱动电机用无取向硅钢应用现状和性能调控研究进展 [J ] . 材料导报 , 2021 , 35 ( 23 ): 23089 - 23096 .
ZHU Chengyi , BAO Yuankai , WANG Yong , et al . Research progress on application status and property control of non-oriented silicon steel for traction motor of new energy vehicles [J ] . Materials Reports , 2021 , 35 ( 23 ): 23089 - 23096 .
UENO S , ENOKIZONO M , MORI Yuji , et al . Vector magnetic characteristics of ultra-thin electrical steel sheet for development of high-efficiency high-speed motor [J ] . IEEE Transactions on Magnetics , 2017 , 53 ( 11 ): 1 - 4 .
姚可夫 . 高效节能材料非晶软磁合金及其在电力和电机中的应用研究 [J ] . 中国科技成果 , 2024 , 25 ( 7 ): 4 - 7 .
YAO Kefu . Research on high efficiency and energy saving materials amorphous soft magnetic alloy and its application in electric power and motor [J ] . China Science and Technology Achievements , 2024 , 25 ( 7 ): 4 - 7 .
赵元胜 , 唐德佳 , 潘卫东 , 等 . 新材料对外转子永磁同步电机输出特性影响分析 [J ] . 微特电机 , 2021 ( 12 ): 29 - 34 .
ZHAO Yuansheng , TANG Dejia , PAN Weidong , et al . Analysis of the influence of new materials on the output characteristic of permanent magnet synehionous motor with external rotor [J ] . Small & Special Electrical Machines , 2021 ( 12 ): 29 - 34 .
颜昌昊 , 樊庆林 , 马德稷 , 等 . 不同转速永磁同步电机非晶合金和硅钢选材分析 [J ] . 电工钢 , 2024 , 6 ( 1 ): 52 - 58 .
YAN Changhao , FAN Qinglin , MA Deji , et al . Analysis of material selection of amorphous alloy and silicon steel for PMSM at different speeds [J ] . Electrical Steel , 2024 , 6 ( 1 ): 52 - 58 .
采埃孚 . 采埃孚eDrive:超高效电动汽车驱动的模块化系统 [EB/OL ] .[ 2024-12-20 ] . https://www.zf.com/products/zh/cars/edrive/edrive.html .
燃擎 . 从八合一到十二合一,比亚迪电驱集成度的上限在哪里? [EB/OL ] .( 2024-06-01 )[ 2024-12-20 ] . https://news.qq.com/rain/a/20240601 A07 HVU00 .
Infineon . CoolSiC TM :why SiC? [EB/OL ] .[ 2024-12-20 ] . https://www.infineon.com/dgdl/Infineon-Cool-SiC-Why-SiC-ProductPresentation-v04_00-EN.pdf?fileId=8ac78c8c8e7ead30018e8350189d1645&da=t .
ZHAO Wenkai . The application status of the third generation of semiconductor materials in the field of electric power [J ] . Highlights in Science,Engineering and Technology , 2023 , 53 : 194 - 198 .
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