SINGLE-STATOR AND DOUBLE-STATOR PERMANENT MAGNET MACHINES, 107-114.

Chukwuemeka C. Awah and Ogbonnaya I. Okoro

References

  1. [1] L. Jian, W. Gong, G. Xu, J. Liang, and W. Zhao, Integratedmagnetic-geared machine with sandwiched armature stator forlow-speed large-torque applications, IEEE Transactions onMagnetics, 48(11), 2012, 4184–4187.
  2. [2] Z. Xiang, L. Quan, X. Zhu, and L. Wang, A brushless doublemechanical port permanent magnet motor for plug-in HEVs,IEEE Transactions on Magnetics, 51(11), 2015, 8111104.
  3. [3] O. Dobzhanskyi, P. Gottipati, E. Karaman, X. Luo, E.A.Mendrela, and A.M. Trzynadlowski, Multilayer-winding versusswitched-flux permanent-magnet AC machines for gearlessapplications in clean-energy systems, IEEE Transactions onIndustry Applications, 48(6), 2012, 2296–2302.
  4. [4] J. Pippuri, A. Manninen, J. Ker¨anen, and K. Tammi, Torquedensity of radial, axial and transverse flux permanent magnetmachine topologies, IEEE Transactions on Magnetics, 49(5),2013, 2339–2342.
  5. [5] Y. Shi, S. Niu, J. Wei, L. Jian, and R. Liu, Comparisonbetween dual-permanent-magnet-excited machines with fewerstator poles and fewer rotor poles, IEEE Transactions onMagnetics, 51(3), 2015, 8200604.
  6. [6] S.M. Jang, S.S. Jeong, D.W. Ryu, and S.K. Choi, Comparison ofthree types of PM brushless machines for an electro-mechanicalbattery, IEEE Transactions on Magnetics, 36(5), 2000,3540–3543.
  7. [7] C.S Walter, H. Polinder, and J.A. Ferreira, High-torque-density high-efficiency flux-switching PM machine for aerospaceapplications, IEEE Journal of Emerging and Selected Topicsin Power Electronics, 1(4), 2013, 327–336.
  8. [8] J. Zhang, M. Cheng, Z. Chen, and W. Hua, Comparison ofstator-mounted permanent-magnet machines based on a generalpower equation, IEEE Transactions on Energy Conversion,24(4), 2009, 826–834.
  9. [9] Z.Q. Zhu, Switched flux permanent magnet machines –innovation continues, in Proc. International Conf. on ElectricalMachines and Systems (ICEMS2011), Beijing, China, 2011,1–10.
  10. [10] I. Petrov and J. Pyrh¨onen, Performance of low-cost permanentmagnet material in PM synchronous machines, IEEE Trans-actions on Industrial Electronics, 60(6), 2013, 2131–2138.
  11. [11] H. Cai, B. Guan, and L. Xu, Low-cost ferrite PM-assisted synchronous reluctance machine for electric vehicles,IEEE Transactions on Industrial Electronics, 61(10), 2014,5741–5748.
  12. [12] A. Fasolo, L. Alberti, and N. Bianchi, Performance comparisonbetween switching-flux and IPM machines with rare-earth andferrite PMs, IEEE Transactions Industry Applications, 50(6),2014, 3708–3716.
  13. [13] Z.Q. Zhu and J.T. Chen, Advanced flux-switching permanentmagnet brushless machines, IEEE Transactions on Magnetics,46(6), 2010, 1447–1453.
  14. [14] C.C. Awah and Z.Q. Zhu, Influence of rotor pole number onelectromagnetic performance of double-stator switched flux PMmachines, in Proc. 13th IEEE Vehicle Power and PropulsionConf. (VPPC2016), Hangzhou, China, 2016, 1–6.
  15. [15] C.C. Awah, Z.Q. Zhu, Z.Z. Wu, et al., Comparison of partitioned stator switched flux permanent magnet machines having single- or double-layer windings, IEEE Transactions onMagnetics, 52(1), 2016, 9500310.
  16. [16] C.C. Awah, Z.Q. Zhu, Z.Z. Wu, D. Wu, and X. Ge, Electro-magnetic performance of switched flux PM machines with twoseparate stators, International Journal for Computation andMathematics in Electrical and Electronics Engineering, 35(2),2016, 1–15.
  17. [17] D.J. Evans and Z.Q. Zhu, Novel partitioned stator switchedflux permanent magnet machines, IEEE Transactions on Magnetics, 51(1), 2015, 8100114.
  18. [18] J.T. Chen and Z.Q. Zhu, Winding configurations and optimalstator and rotor pole combination of flux switching PM brush-less AC machines, IEEE Transactions on Energy Conversion,25(2), 2010, 293–302.
  19. [19] J.T. Chen, Z.Q. Zhu, S. Iwasaki, and R.P. Deodhar, A novelE-core switched flux PM brushless AC machine, IEEE Trans-actions on Industry Applications, 47(3), 2011, 1273–1282.
  20. [20] X. Li, K.T. Chau, M. Cheng, B. Kim, and R.D. Lorenz,Performance analysis of a flux-concentrating field-modulatedpermanent-magnet machine for direct-drive applications, IEEETransactions on Magnetics, 51(5), 2015, 8104911.
  21. [21] Z.Q. Zhu, Y. Pang, D. Howe, S. Iwasaki, R. Deodhar, and A.Pride, Analysis of electromagnetic performance of switched fluxswitching permanent magnet machines by non-linear adaptivelumped parameter magnetic circuit model, IEEE Transactionson Magnetics, 41(11), 2005, 4277–4287.
  22. [22] F. Magnussen and H. Lendenmann, Parasitic effects in PMmachines with concentrated windings, IEEE Transactions onIndustry Applications, 43(5), 2007, 1223–1232.
  23. [23] D. Wang, X. Wang, and S.Y. Jung, Reduction on coggingtorque in flux-switching permanent magnet machine by teethnotching schemes, IEEE Transactions on Magnetics, 48(11),2012, 4228–4231.
  24. [24] W. Fei, P.C.K. Luk, J. Shen, Torque analysis of permanent-magnet flux switching machines with rotor step skewing, IEEETransactions on Magnetics, 48(10), 2012, 2664–2673.
  25. [25] S. Chandan, H. Iqbal, and O. Wen, Cogging torque reduction influx-switching permanent-magnet machines by rotor shaping,IEEE Transactions on Industry Applications, 51(5), 2015,3609–3619.
  26. [26] C.C. Hwang, C.M Chang, S.S Hung, and C.T. Liu, Designof high performance flux switching PM machines with concentrated windings, IEEE Transactions on Magnetics, 50(1),2014, 4002404.

Important Links:

Go Back