Effect of Magnet Types on Performance of High-Speed Spoke Interior-Permanent-Magnet Machines Designed for Traction Applications

被引:117
作者
Galioto, Steven J. [1 ]
Reddy, Patel B. [1 ]
EL-Refaie, Ayman M. [1 ]
Alexander, James P. [1 ]
机构
[1] Gen Elect Global Res Ctr, Elect Machines Lab, Niskayuna, NY 12309 USA
关键词
High speed; interior; machines; magnet types; permanent magnet; spoke; traction; MOTOR;
D O I
10.1109/TIA.2014.2375380
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Interior permanent magnet (PM) machines are considered the state of the art for traction motors, particularly in light-duty hybrid and electrical vehicles. These motors usually use neodymium-iron-boron (NdFeB) PMs. These magnets include both light rare-earth materials such as neodymium (Nd) as well as heavy rare-earth materials such as dysprosium (Dy). The main purpose of Dy is to enhance the magnet coercivity to avoid demagnetization under both high temperatures as well as flux weakening. One of the key risks in terms of using these rare-earth magnets is the significant fluctuation/increase in their prices over the past few years. Applications that use large quantities of these magnets, such as traction motors and wind generators, are the most affected by these fluctuations. There has been an ongoing global effort to try to reduce or eliminate the use of rare-earth materials (particularly Dy which is the most expensive) without sacrificing too much performance. This paper will focus on advanced spoke designs targeting traction applications. The goal of this paper is to come up with new spoke designs using various grades of Dy-free magnets as well as ferrites targeting the same set of specifications. This paper will provide a detailed comparison between the various designs highlighting the key tradeoffs in terms of power density, efficiency, flux-weakening capability, and magnet susceptibility to demagnetization. Also, a prototype using ferrites has been built and tested, and the experimental results will be presented.
引用
收藏
页码:2148 / 2160
页数:13
相关论文
共 15 条
  • [1] Automotive Electric Propulsion Systems With Reduced or No Permanent Magnets: An Overview
    Boldea, Ion
    Tutelea, Lucian N.
    Parsa, Leila
    Dorrell, David
    [J]. IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2014, 61 (10) : 5696 - 5711
  • [2] Low-Cost Ferrite PM-Assisted Synchronous Reluctance Machine for Electric Vehicles
    Cai, Haiwei
    Guan, Bo
    Xu, Longya
    [J]. IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2014, 61 (10) : 5741 - 5748
  • [3] Overview of permanent-magnet brushless drives for electric and hybrid electric vehicles
    Chau, K. T.
    Chan, C. C.
    Liu, Chunhua
    [J]. IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2008, 55 (06) : 2246 - 2257
  • [4] El-Refaie AM, 2013, IEEE ENER CONV, P581, DOI 10.1109/ECCE.2013.6646754
  • [5] Fasolo A, 2012, 2012 XXTH INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES (ICEM), P731, DOI 10.1109/ICElMach.2012.6349955
  • [6] Han SH, 2007, IEEE IND APPLIC SOC, P558
  • [7] Torque Ripple Reduction in Interior Permanent Magnet Synchronous Machines Using Stators With Odd Number of Slots Per Pole Pair
    Han, Seok-Hee
    Jahns, Thomas M.
    Soong, Wen L.
    Guven, Mustafa K.
    Illindala, Mahesh S.
    [J]. IEEE TRANSACTIONS ON ENERGY CONVERSION, 2010, 25 (01) : 118 - 127
  • [8] Jahns TM, 2000, IEEE IND APPLIC SOC, P1697, DOI 10.1109/IAS.2000.882109
  • [9] Prospects for Non-Rare Earth Permanent Magnets for Traction Motors and Generators
    Kramer, M. J.
    McCallum, R. W.
    Anderson, I. A.
    Constantinides, S.
    [J]. JOM, 2012, 64 (07) : 752 - 763
  • [10] Liang F., 2009, Electrical Machines and Systems, P1