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Research on Forces and Dynamics of Maglev Wind Turbine Generator

  • Wang, Nianxian (School of Mechanical and Electronic Engineering, Wuhan University of Technology) ;
  • Hu, Yefa (School of Mechanical and Electronic Engineering, Wuhan University of Technology) ;
  • Wu, Huachun (School of Mechanical and Electronic Engineering, Wuhan University of Technology) ;
  • Zhang, Jinguang (School of Mechanical and Electronic Engineering, Wuhan University of Technology) ;
  • Song, Chunsheng (School of Mechanical and Electronic Engineering, Wuhan University of Technology)
  • Received : 2013.02.26
  • Accepted : 2013.10.14
  • Published : 2013.12.31

Abstract

Maglev wind turbine generator (MWTG) technology has been widely studied due to its low loss, low maintenance cost, and high reliability. However, the dynamics of the magnetic bearing system differ fromthe those of the traditional mechanical bearing system. A horizontal axial MWTG supported with a permanent magnetic bearing is designed in this research and the radial forces and the natural frequencies of the rotor system are studied. The results show that the generatorhas a cyclical magnetic forceand an unreasonable bearing stiffness may mean that the rotor system needs to work in the resonance region; the bearing stiffness is the key factor to avoid this problem. This is the main rule of the bearing stiffness design in the MWTG, and this rule can also be used in other maglev permanent magnet motors.

Keywords

References

  1. Y. Hu, Z. Zhou, and Z. Jiang, Basic Theory and Application of Active Magnetic Bearing, China Machine Press (2006).
  2. G. Shrestha, H. Polinder, D. J. Bang, and J. A. Ferreira, IEEE Tran. Energy Conversion, 25, 732 (2010). https://doi.org/10.1109/TEC.2010.2048713
  3. G. Shrestha, H. Polinder, D. J. Bang, and J. A. Ferreira, Proceedings Offshore wind 2007 (2007).
  4. N. C. Tsai and C. W. Chiang, Mechanical Systems and Signal Processing, 24, 873 (2010). https://doi.org/10.1016/j.ymssp.2009.09.013
  5. H. Wu, L. Xiao, B. Wang, G. Li, and P. Li, Proceedings of 2010 IEEE/ASME, International Conference on Mechatronic and Embedded Systems and Applications (2010) pp. 283-287.
  6. S. Liu, Z. Bian, D. Li, and W. Zhao, Asia-Pacific Power and Energy Engineering Conference (2010).
  7. Y. H. Fan, Y. T. Lee, C. C. Wang, and Y. L. Liao, Appl. Mechanics and Materials, 145, 174 (2012).
  8. N. Wang, J. Zhang, and Y. Hu, Journal of Wuhan University of Technology (information& management engineering), 36, 896 (2010).
  9. B. Paden, N. Groom, and J. F. Antaki, J. Mech. Des., 125, 734 (2003). https://doi.org/10.1115/1.1625402
  10. R. Ravaud, G. Lemarquand, and V. Lemarquand, IEEE Trans. Magn., 45, 2996 (2009). https://doi.org/10.1109/TMAG.2009.2016088
  11. R. Ravaud, G. Lemarquand, and V. Lemarquand, IEEE Trans. Magn., 45, 3334 (2009). https://doi.org/10.1109/TMAG.2009.2025315
  12. N. X. Wang, J. G. Zhang, and G. P. Ding, Appl. Mechanics and Materials, 105, 57 (2012).
  13. W. J. Yu and X. Y. Qian, Appl. Mechanics and Materials, 195, 47 (2012).

Cited by

  1. ANALYTICAL MODEL OF THE MAGNETIC FIELD DISTRIBUTION OF A GENERATOR COMBINED WITH MAGNETIC BEARING IN WIND TURBINES vol.81, pp.1937-6472, 2018, https://doi.org/10.2528/PIERB18032701