DOI QR코드

DOI QR Code

Thermal Analysis of Interior Permanent-Magnet Synchronous Motor by Electromagnetic Field-Thermal Linked Analysis

  • Lee, Sang-Taek (Dept. of Electronics, Electrical, Control and Instrumentation Engineering, Hanyang University) ;
  • Kim, Hee-Jun (Dept. of Electronics, Electrical, Control and Instrumentation Engineering, Hanyang University) ;
  • Cho, Ju-Hee (Korea Electronics Technology Institute) ;
  • Joo, Dae-Suk (Dept. of Electrical Engineering, Pukyong National University) ;
  • Kim, Dae-Kyong (Dept. of Electrical Control Engineering, Sunchon National University)
  • Received : 2011.11.04
  • Accepted : 2012.08.20
  • Published : 2012.11.01

Abstract

This paper reports an investigation of pulse width modulation (PWM) techniques for twophase brushless DC (BLDC) motors fed by a two-phase eight-switch inverter in a fan application. The three-phase BLDC motor is widely applied in industry; however, a lower-cost two-phase BLDC motor and drive circuit has been greatly in demand in recent years. In this paper, we introduce a mathematical model of the two-phase BLDC motor with sinusoidal back electromotive forces (EMFs) based on traditional three-phase BLDC motors. To simplify the drive algorithm and speed up its application, we analyze the principle of block commutation for a two-phase BLDC motor drive in the 180-electricaldegree conduction mode, and we further propose five PWM schemes to improve the commutation performance of the two-phase BLDC drive. The effectiveness of the proposed PWM methods is verified through experiments.

Keywords

References

  1. A. Boglietti, A. Cavagnino, D. Staton, M. Shanel, M. Mueller, C. Mejuto, "Evolution and modern approaches for thermal analysis of electrical machines," IEEE Trans. Industrial Electronics, Vol. 56, No.3, pp. 871-882, Mar. 2009. https://doi.org/10.1109/TIE.2008.2011622
  2. P. H. Mellor, D. Roberts, D. R. Turner, "Lumped parameter thermal model for electrical machines of TEFC design," Electric Power Applications, IEE Proceedings B, Vol.138, No.5, pp. 205-218, Sep. 1991. https://doi.org/10.1049/ip-b.1991.0025
  3. Yangsoo Lee, Song-Yop Hahn, S.K. Kauh, "Thermal analysis of induction motor with forced cooling channels," IEEE Trans. Magnetics, Vol. 36, No.4, pp. 1398-1402, July 2000. https://doi.org/10.1109/20.877700
  4. D. Staton, A. Boglietti, A. Cavagnino, "Solving the more difficult aspects of electric motor thermal analysis," Electric Machines and Drives Conference, 2003. IEMDC'03. IEEE International, Vol. 2, No., pp. 747-755, Vol. 2, 1-4 June 2003.
  5. S. Mezani, N. Takorabet, B. Laporte, "A combined electromagnetic and thermal analysis of induction motors," IEEE Trans. Magnetics, Vol. 41, No. 5, pp. 1572-1575, May 2005. https://doi.org/10.1109/TMAG.2005.845044
  6. O.I. Okoro, "Steady and transient states thermal analysis of a 7.5-kW squirrel-cage induction machine at rated-load operation," IEEE Trans. Energy Conversion, Vol. 20, No. 4, pp. 730-736, Dec. 2005. https://doi.org/10.1109/TEC.2005.852965
  7. A. Boglietti, A. Cavagnino, M. Pastorelli, D. Station, A. Vagati, "Thermal analysis of induction and synchronous reluctance motors," IEEE Trans. Industry Applications, Vol. 42, No. 3, pp. 675-680, May-June 2006. https://doi.org/10.1109/TIA.2006.873668
  8. YouGuang Guo, Jian Guo Zhu, W. Wu, "Thermal analysis of soft magnetic composite motors using a hybrid model with distributed heat sources," IEEE Trans. Magnetics, Vol. 41, No. 6, pp. 2124-2128, June 2005. https://doi.org/10.1109/TMAG.2005.848316
  9. D.G. Dorrell, "Combined thermal and electromagnetic analysis of permanent-magnet and induction machines to aid calculation," IEEE Trans. Industrial Electronics, Vol. 55, No. 10, pp. 3566-3574, Oct. 2008. https://doi.org/10.1109/TIE.2008.925311
  10. F. Marignetti, V.D. Colli, "Thermal analysis of an axial flux permanent-magnet synchronous machine," IEEE Trans. Magnetics, Vol. 45, No. 7, pp. 2970- 2975, July 2009. https://doi.org/10.1109/TMAG.2009.2016415
  11. Yunkai Huang, Jianguo Zhu, Youguang Guo, "Thermal analysis of high-speed SMC motor based on thermal network and 3-D fea with rotational core loss included," IEEE Trans. Magnetics, Vol. 45, No. 10, pp. 4680-4683, Oct. 2009. https://doi.org/10.1109/TMAG.2009.2023065
  12. S. Ruoho, J. Kolehmainen, J. Ikaheimo, A. Arkkio, "Interdependence of demagnetization, loading, and temperature rise in a permanent-magnet synchronous motor," IEEE Trans. Magnetics, Vol. 46, No. 3, pp. 949-953, Mar. 2010. https://doi.org/10.1109/TMAG.2009.2033592
  13. Jinxin Fan, Chengning Zhang, Zhifu Wang, Yunang dong, C.E. Nino, A.R. Tariq, E.G. Strangas, "Thermal analysis of permanent magnet motor for the electric vehicle application considering driving duty cycle," IEEE Trans. Magentics, Vol. 46, No. 6, pp. 2493- 2496, June 2010. https://doi.org/10.1109/TMAG.2010.2042043
  14. P. K. Vong, D. Rodger, "Coupled electromagneticthermal modeling of electrical machines," IEEE Trans. Magnetics, Vol. 39, No. 3, pp. 1614-1617, May 2003. https://doi.org/10.1109/TMAG.2003.810420
  15. F. P. Incropera, D. P. DeWitt, T.L. Bergman, A. S. Lavine, Fundamentals of Heat and Mass Transfer, 6th ed., Hoboken, NJ:Wiley, 2006, pp. 6-8.

Cited by

  1. Water-Cooled Direct Drive Permanent Magnet Motor Design in Consideration of its Efficiency and Structural Strength vol.18, pp.2, 2013, https://doi.org/10.4283/JMAG.2013.18.2.125
  2. Design of permanent magnet synchronous motors including thermal aspects vol.34, pp.2, 2015, https://doi.org/10.1108/COMPEL-08-2014-0196