Buradasınız

An experimental and Finite Element analysis of radii and skew effects on interior permanent magnet motors performance

Journal Name:

Publication Year:

Author NameUniversity of AuthorFaculty of Author
Abstract (2. Language): 
Effect of rotor iron pole radii and skew on performance of interior permanent magnet motors is studied in this paper. A comparison is carried out by finite element analysis method and is confirmed by the experimental results obtained with two laboratory prototypes. The results show that, although the skew method is very effective in suppressing the cogging torque of an interior permanent magnet (IPM) motor, it will deteriorate other performances more in respect to radii ratio method.
50-60

REFERENCES

References: 

[1] Rajesh P. Deodhar, David A. Staton, Thomas M. Jahns, and J. E. Miller, “Prediction of Cogging Torque Using the Flux-
MMF Diagram Technique,” IEEE Transactions on Industry Applications, vol. 32, no. 3, May/June 1996.
[2] D.C. Hanselman, “Effect of skew, pole count and slot count on brushless motor radial force, cogging torque and back
EMF,” IEE Proc-Electr. Power Appl., vol. 144, no. 5. September 1997.
[3] G.H. Jang, J.W. Yoon, K.C. Ro, N.Y. Park and S.M. Jang, “Performance of a Brushless DC Motor due to the Axial Geometry
of the Permanent Magnet,” IEEE Transactions on Magnetics, vol. 33, no. 5, September 1997.
[4] M. Łukaniszyn, M. JagieŁa, and R. Wróbel, “Optimization of Permanent Magnet Shape for Minimum Cogging Torque
Using a Genetic Algorithm,” IEEE Transactions on Magnetics, vol. 40, no. 2 March 2004.
[5] Min Dai, Ali Keyhani, and Tomy Sebastian,” Torque Ripple Analysis of a PM Brushless DC Motor Using Finite Element
Method,” IEEE Transactions on Energy Conversion, vol. 19, no. 1, March 2004.
[6] Mohammad S. Islam, Sayeed Mir, Tomy Sebastian, and Samuel Underwood, “Design Considerations of Sinusoidally
Excited Permanent-Magnet Machines for Low-Torque-Ripple Applications,” IEEE Transactions on Industry Applications,
Vol. 41, No. 4, July/August 2005.
[7] Delvis Anibal González, Juan Antonio Tapia, and Alvaro Letelier Bettancourt, “Design Consideration to Reduce Cogging
Torque in Axial Flux Permanent-Magnet Machines,” IEEE Transactions on Magnetics, vol. 43, no. 8, August 2007.
[8] Li Zhu, S. Z. Jiang, Z. Q. Zhu, and C. C. Chan, “Analytical Methods for Minimizing Cogging Torque in Permanent-Magnet
Machines,” IEEE Transactions on Magnetics, vol. 45, no. 4, April 2009.
[9] E.R. Braga Filho and A.M.N. Lima, “Reducing Cogging Torque in Interior Permanent Magnet Machines without Skewing,”
IEEE Transactions on Magnetics, vol 34, no 5, September 1998.
[10] Y. Kawaguchi, T. Sato, I. Miki, and M. Nakamura, “A Reduction Method of Cogging Torque for IPMSM,” 2007 IEEE.
[11] Nicola Bianchi, Silverio Bolognani, Diego Bon, and Michele Dai Pr´e, “Rotor flux–barrier design for torque ripple
reduction in synchronous reluctance motors,” 2006 IEEE.
[12] Dong-Hun Kim, Il-Han Park, Joon-Ho Lee, and Chang-Eob Kim, “Optimal Shape Design of Iron Core to Reduce Cogging
Torque of IPM Motor,” IEEE Transactions on Magnetics, vol. 39, no. 3, May 2003.
[13] Rukmi Dutta, Saad Sayeef and M. F. Rahman, “Cogging Torque Analysis of a Segmented Interior Permanent Magnet
Machine,” 2007 IEEE.
[14] Joon-Ho Lee, Dong-Hun Kim, and Il-Han Park, “Minimization of Higher Back-EMF Harmonics in Permanent Magnet
Motor Using Shape Design Sensitivity With B-Spline Parameterization,” IEEE Transactions on Magnetics, vol. 39, no. 3,
May 2003.
[15] Kyu-Yun Hwang, Sang-Bong Rhee, Byoung-Yull Yang, and Byung-Il Kwon, “Rotor Pole Design in Spoke-Type Brushless DC
motor by Response Surface Method,” IEEE Transactions on Magnetics, vol. 43, no. 4, April 2007.
[16] A. Kioumarsi, M. Moallem, and B. Fahimi, “Mitigation of Torque Ripple in Interior Permanent Magnet Motors by
Optimal Shape Design,” IEEE Transactions on Magnetics, vol. 42, no. 11, November 2006.
[17] Sung-Il Kim, Ji-Young Lee, Young-Kyoun Kim, Jung-Pyo Hong, Yoon Hur, and Yeon-Hwan Jung, “Optimization for
Reduction of Torque Ripple In Interior Permanent Magnet By Using the Taguchi Method,” IEEE Transactions on
Magnetics, vol. 41, no. 5, 2005.

Thank you for copying data from http://www.arastirmax.com