Review on Development of Permanent Magnet In-Wheel Motors

被引:0
|
作者
Guan T. [1 ]
Liu D. [1 ]
He Y. [1 ]
机构
[1] State Key Laboratory of Tribology in Advanced Equipment, Department of Mechanical Engineering, Tsinghua University, Beijing
关键词
Dynamic system; electric vehicle; in-wheel motor; in-wheel motor system;
D O I
10.19595/j.cnki.1000-6753.tces.221656
中图分类号
学科分类号
摘要
Due to the advantages of small size, high power density, and high efficiency, the permanent magnet (PMSM) motor can be widely applied in electrical vehicles, new energy power generation, flywheel energy storage, machine tool equipment, and aerospace. This paper compares the characteristics and performance indicators of in-wheel motor products from domestic and international manufacturers. Then, the basic structure, characteristics, technology, and materials of the PMSM are dissected. Different schemes and structures are explored, with an emphasis on high efficiency, power density, reliability, and wide speed regulation. Finally, the common scientific problems of the PMSM motor are summarized, and the technical paths to improve the efficiency and power density are explored, providing a reference for future research and application of in-wheel motors. Two primary integration forms for in-wheel motor drive systems, namely deceleration drive and direct drive, are discussed. The emergence of compact planetary reducers is highlighted, particularly for deceleration-driven hub motor systems, presenting great competitive advantages, especially in heavy-duty vehicle applications. In the 21st century, in-wheel motor technology has been widely developed, with Foreign technologies leading the way, particularly in Europe. The main research and development enterprises are Schaeffler, Protean, Elaphe, NTN, TM4, and Michelin. The products of Schaeffler are all inner rotor structures. The products of Protean are outer rotor direct drive structures. Domestic technology is also continuously developing. Representatives are THIM Tianhai, Edes, Tate, and Shanghai Electric Drive. Shanghai Electric Drive and Shanghai University jointly developed an in-wheel motor with the same overall power density as the Protean's products. According to the direction of the motor's magnetic field, a permanent magnet in-wheel motor can be divided into a radial flux motor, axial flux motor, and transverse flux motor. Radial flux motors remain mainstream in the market due to their low cost and mature technology. Axial flux motors exhibit the characteristics of axial compactness and high-power density, but the process is complex. The transverse flux motors have the characteristics of electromagnetic load decoupling, high power density, and high design freedom. However, their power factor is low with magnetic flux leakage and a complex structure. New materials are critical in overcoming development bottlenecks of in-wheel motors. Achieving lightweight design, efficient heat dissipation capacity, and copper content are identified as key objectives to reduce losses, enhance torque movement, and improve operation efficiency. By leveraging electromagnetic characteristics, these innovations contribute to increased power/torque density, expanded speed operation range, and reduced NVH and motor cost. © 2024 China Machine Press. All rights reserved.
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页码:378 / 396
页数:18
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共 81 条
  • [1] Gu Yunqing, Zhang Lijun, Development status and trend of electric wheel drive system for electric vehicles, Automobile Research & Development, 12, pp. 27-30, (2004)
  • [2] Bao Xiaohua, Liu Jiwei, Sun Yue, Et al., Review and prospect of low-speed high-torque permanent magnet machines, Transactions of China Electrotechnical Society, 34, 6, pp. 1148-1160, (2019)
  • [3] He Guojun, Technical principles, advantages and disadvantages of new energy vehicle technology, Internal Combustion Engine & Parts, 4, pp. 245-247, (2022)
  • [4] Kong Chuiyi, Dai Ying, Luo Jian, Development status and trend of in-wheel motor technology for electric vehicles, Electric Machines & Control Application, 46, 2, pp. 101-108, (2019)
  • [5] Yao Lanni, Li Qinhao, Yang Jingxu, Et al., Comprehensive reactive power optimization of power distribution and consumption system with support of electric vehicle charging and discharging, Automation of Electric Power Systems, 46, 6, pp. 39-47, (2022)
  • [6] Chen Jinrong, Yang Xiaoxiang, Zhao Lihui, Lightweight design of electric wheel, Agricultural Equipment & Vehicle Engineering, 59, 5, pp. 135-140, (2021)
  • [7] Ya Jufeng, Application analysis of in-wheel motor technology in new energy vehicles, Auto Time, 11, pp. 92-94, (2023)
  • [8] Wu Shihua, Cui Shumei, The review of permanent magnet wheel motor in electric vehicle application, Small & Special Machines, 33, 6, pp. 40-43, (2005)
  • [9] Li Xiaohua, Wang Rumei, The future trends of in-wheel motors for electric vehicles, 2011 International Conference on Consumer Electronics, Communications and Networks (CECNet), pp. 5390-5393, (2011)
  • [10] Li Yankai, Guo Zhenxing, Zhang Qingyi, Et al., Performance comparison between axial flux and radial flux permanent magnet synchronous generator, Small & Special Electrical Machines, 49, 12, pp. 8-13, (2021)