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A Novel Claw Pole Eddy Current Load for Testing a DC Counter Rotating Motor Part I: Construction

  • Kanzi, Khalil (Iranian Academic Center for Education, Culture and Research(ACECR), K.N.Toosi University of Technology) ;
  • Dehafarin, Abolfazl (Iranian Academic Center for Education, Culture and Research(ACECR), K.N.Toosi University of Technology) ;
  • Roozbehani, Sam (Iranian Academic Center for Education, Culture and Research(ACECR), K.N.Toosi University of Technology) ;
  • Kanzi, Majid (Iranian Academic Center for Education, Culture and Research(ACECR), K.N.Toosi University of Technology) ;
  • Vasheghani, Qasem (Iranian Academic Center for Education, Culture and Research(ACECR), K.N.Toosi University of Technology)
  • 투고 : 2012.04.09
  • 심사 : 2012.08.07
  • 발행 : 2012.09.01

초록

Providing variable load for testing a motor in high speed conditions is usually a difficult task. The eddy current brake can be used in application of load testing of motors. This paper deals with construction of a novel claw pole eddy current brake which is employed as a load for a DC counter rotating motor (CRM). These kinds of motors have two inner and outer shafts that rotate in opposite directions simultaneously, which are particularly suitable for under water propulsion systems. The prototype 45KW eddy current brake consists of two parts. One of them is installed on the inner shaft of the 60KW DC CRM and the other one is installed on its outer shaft. The simulation and experimental results with prototype brakes are also analyzed by using MATLAB/Simulink and the operational characteristic of the brake is demonstrated as a function of the motor speed and current of the magnetic poles.

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참고문헌

  1. F. Caricchi, F. Crescimbini, E. Santini, "Basic Principle and Design Criteria of Axial-Flux PM Machine Having Counter Rotatting Rotors", IEEE Transaction on Industry Applications, vol. 1 n. 5, pp.247-253, October 1995.
  2. J. Qiu, C. Shi, M. Jin, R. Lin, "Counter Rotating Permanent Magnet Brushless DC Motor for Underwater Propulsion", presented at the 5th CES IEEE International Conference on Power Electronics and Motion Control, Shanghai, China, 2006.
  3. S. E. Gey, M. Ehsani, "Parametric Analysis of Eddy Current Brake Performance By 3-D Finent Element Analysis", IEEE Transactions on Magnetics, vol. 42 n. 2, pp.319-328, February 2006. https://doi.org/10.1109/TMAG.2005.860782
  4. M. Hofmann, T. Werle, R. Pfeiffer, A. Binder, "2D and 3D Numerical Field Computation of Eddy Current Brakes for Traction", IEEE Transaction on Magnetics, vol.36 n. 4, pp.1758-1763, July 2000. https://doi.org/10.1109/20.877784
  5. A. B. Dietrich, I. E. Chabu, J.R. Cardoso, "Eddy Current Brake Analysis using Analytic FEM Calculations. I. Theory", presented at the IEEE International Conference on Electrical Machine and Drive, Cambridge, Massachusetts, 2001.
  6. D. K. Morris, G. A. Lister, "The Eddy Current Brake for Testing Motors", Journal of the Institution of Electrical Engineering, vol. 35 n.175, pp.445-468 September 1905. https://doi.org/10.1049/jiee-1.1905.0065
  7. L. Barnes, J. Hardi, C. A. Groos, D. Wasson, "An EddyCurrent Braking System, presented at 25th Southeastern Symposium on System Theory", University of Alabama Tuscaloosa, 1993.
  8. Lei Ma, M. Sanada, S. Morimoto, Y. Takeda, "Prediction of Iron Loss in Rotating Machines with Rotational Loss Included", IEEE Transaction on Magnetics, vol. 39 n. 4, pp.2036-2041, July 2003. https://doi.org/10.1109/TMAG.2003.812706
  9. K. Yamazaki, N. Fukushima, "Iron Loss Model for Rotating Machine Using Direct Current Analysis in Electrical Steel Sheet", IEEE Transaction on Energy Conversion, vol. 25 n. 3, pp.633-641,September 2003.
  10. D. M. Ionel, M. Popescu, S. G. Dellinger, T. J. E. Miller, R. J. Heideman, M. I. McGilp, "Factors Affecting the Accurate Prediction of Core losses in Electrical Machine", presented at the IEEE International Conference on Electrical Machines, San Antonio, Texas 2005.