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Journal of electrical engineering & technology v.7 no.3, 2012년, pp.336 - 341   SCIE
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Contribution of Maxwell Stress in Air on the Deformations of Induction Machines

Fonteyn, K.A.    (Dept. of Electrical Engineering, Aalto University   ); Belahcen, A.    (Dept. of Electrical Engineering, Aalto University   ); Rasilo, P.    (Dept. of Electrical Engineering, Aalto University   ); Kouhia, R.    (Dept. of Structural Engineering and Building Technology, Aalto University   ); Arkkio, A.    (Dept. of Electrical Engineering, Aalto University  );
  • 초록

    Deformations in a cage-induction machine are investigated with simulations. The contribution of the Maxwell stress in the air gap and coil regions of the machine on the deformation is studied by comparing results obtained with and without inclusion of the stress into the calculation. The work attests the acceptability of an energy-based magneto-mechanical model for a 2D mesh of two different rotating electrical machines.


  • 주제어

    Induction machine .   Magnetoelasticity .   Magnetostriction .   Maxwell stress .   Vibrations.  

  • 참고문헌 (13)

    1. Bloch, F., 1932, "Zur Theorie des Austauschproblems und der Remanenzerscheinung der Ferromagnetika", Zeitschrift fur Physik A Hadrons and Nuclei, Vol. 74, No. 4-5, pp. 295-335. 
    2. Bozorth, R.M, Williams, 1945, H.J., "Effect of Small Stresses on Magnetic Properties", Reviews of Modern Physics, Vol. 17, No, 1. 
    3. Bozorth, R.M., Hamming, R.W., 1953, "Measurement of Magnetostriction in Single Crystals", Physical Review, Vol. 89, No. 4, pp. 865-869. 
    4. IEEE Std 100, 1996. The IEEE standard dictionary of electrical and electronics terms. Institute of Electrical and Electronics Engineers, Library MARC record, 6th edition, 1278 pages. 
    5. K. Delaere, 2002. Computational and Experimental Analysis of Electric Machine Vibrations caused by Magnetic Forces and Magnetostriction. Doctoral dissertation. Katholieke Universiteit Leuven, Leuven, Belgium. 
    6. A. Dorfmann, Ogden R. W., 2003, "Magneto-elastic Modelling of Elastomers", Europ. J. Mech. A/Sol., Vol. 22, pp. 497-507. 
    7. A. Dorfmann, Ogden R.W., Saccomandi, G., 2004, "Universal relations for non-linear magnetoelastic solids", Int. J. Non-Lin. Mech., Vol. 39, pp. 1699-1708. 
    8. A. J. M. Spencer, 1971, Theory of Invariants, Continuum Physics, Eringer A. C. (editor), Academic Press, New York, Vol. 1, pp. 239-353 
    9. K. Fonteyn, A. Belahcen, R. Kouhia, P. Rasilo and A. Arkkio, "FEM for directly coupled magnetomechanical phenomena in electrical machines", IEEE Transactions on Magnetics, Vol.: 46, No. 8, 2010. 
    10. A. Belahcen, "Magnetoelastic coupling in rotating electrical machines", IEEE Transactions on Magnetics, Vol. 41, No.5, pp.1624-7, 2005. 
    11. A. Belahcen, K. Fonteyn, A. Hannukainen, R. Kouhia, "On numerical modeling of coupled magnetoelastic problem", Proceedings of the 21st Nordic Seminar on Computational Mechanics, Trondheim, 2008, T. Kvamsdal, K.M. Mathisen and B. Pettersen (editors), pp. 203-206. 
    12. S. Fortino, R. Kouhia, A. Belahcen, K. Fonteyn, "A coupled model for magnetostriction in ferromagnetic materials", International Conference on Computational Methods for Coupled Problems in Science and Engineering. Barcelona, Spain, 2007, pp. 483-486. 
    13. K. Fonteyn, A. Belahcen, P. Rasilo, R. Kouhia, and A. Arkkio "Simulated Results and Experimental Verification of a Novel Magneto-Mechanical Coupled Method", proceedings of ICEMS 2010, 10-13 October 2010, Seoul, Korea. 

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