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Experimental evaluation of the impact of squirrel-cage material on the performance of induction motors and line-start interior permanent magnet synchronous motors

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Warianty tytułu
PL
Eksperymentalna ocena wpływu materiału klatki na właściwości silnika indukcyjnego
Języki publikacji
EN
Abstrakty
EN
The impact of squirrel-cage material on steady-state and dynamic performance of induction motors and line-start interior permanent magnet synchronous motors is evaluated based on experimental data. The performance of motors with equal squirrel-cages manufactured from aluminium and silumin is analyzed and discussed, thus an integral analysis of similarities and differences between both motor types in relation to the squirrel-cage material is performed.
PL
Analizowano wpływ materiału klatki na właściwości silnika indukcyjnego i startowego wewnętrznego silnika synchronicznego. Badano klatki wykonane z aluminium i siluminu.
Rocznik
Strony
334--337
Opis fizyczny
Bibliogr. 34 poz., rys., tab., wykr.
Twórcy
autor
  • TECES, Research and Development Centre for Electric Machines, Pobreska cesta 20, Sl-2000 Maribor, Slovenia, tine.marcic@teces.si
Bibliografia
  • [1] Williamson S. , McClay C. I . , Optimization of the geometry of closed rotor slots for cage induction motors, IEEE Trans. Ind. Applicat., 32 (1996), No. 3, 560-568
  • [2] Kurihara K. , Rahman M. A. , High-efficiency line-start interior permanent-magnet synchronous motors, IEEE Trans. Ind. Appl., 40 (2004), No. 3, 789-796
  • [3] Williamson S. , Knight A. M. , Performance of skewed single-phase line-start permanent magnet motors, IEEE Trans. Ind. Appl., 35 (1999), No. 3, 577-582
  • [4] McClay C. I . , Williamson S. , The variation of cage motor losses with skew, IEEE Trans. Ind. Applicat., 36 (2000), No. 6, 1563-1570
  • [5] Craggs J . L. , Fabricated aluminum cage construction in large induction motors, IEEE Trans. Ind. Applicat., IA-12 (1976), No. 3, 261-267
  • [6] Poloujadof f M. , Mipo J .C. , Nurdin M. , Some economical comparisons between aluminum and copper squirrel cages, IEEE Tran. Energy Conver., 10 (1995), No. 3, 415-418
  • [7] Kirtley J . L. Jr . , Designing squirrel cage rotor slots with high conductivity, Proceedings ICEM 2004, Kraków, Poland
  • [8] Parasiliti F. , Villani M. , Paris C. , Walti O. , Songini G. , Novello A. , Rossi T. , Three-phase induction motor efficiency improvements with die-cast copper rotor cage and premium steel, Proceedings SPEEDAM 2004, Capri, Italy, pp. 338-343
  • [9] Boglietti A. , Cavagnino, A. , Feraris , L. , and Lazzar i , M. , Energy-efficient motors: Comparing the performance of die-cast copper squirrel cage induction motors with aluminum cage induction motors, IEEE Industrial Electronics Magazine, 2 (2008), No. 4, 32-37
  • [10] Miyashita K. , Yamashita S. , Tanabe S. , Shimozu T. , Sento H. , Development of a high speed 2-pole permanent magnet synchronous motor, IEEE Tran. Power Ap. Syst., PAS-99 (1980), No. 6, 2175-2183
  • [11] Marcic T. , Štumberger B. , Štumberger G. , Hadžiselimovic M., Virtic P. , Dolinar D. , Linestarting three- and single-phase interior permanent magnet synchronous motors—direct comparison to induction motors, IEEE Trans. Magn., 44 (2008), No. 11, 4413-4416
  • [12] Marcic T. , A short review of energy-efficient line-start motor design, Przegląd Elektrotechniczny, 87 (2011), No. 3, 119-122
  • [13] Rossa R. , Król E. , Modern electric machines with permanent magnets, Przegl$d Elektrotechniczny, 84 (2008), No. 12, 12-17
  • [14] Knight A. M. , McClay C. I . , The design of highefficiency line-start motors, IEEE Trans. Ind. Appl., 36 (2000), No. 6, 1555-1562
  • [15] Ding T. , Takorabet N. , Sargos F. -M. , Wang X. , Design and analysis of different line-start PM synchronous motors for oil-pump applications, IEEE Trans. Magn., 45 (2009), No. 3, pp. 1816-1819.
  • [16] Miller T. J . E. , Synchronization of line-start permanentmagnet AC motors, IEEE Tran. Power Ap. Syst., PAS-103 (1984), No. 7, 1822-1828
  • [17] Peralta-Sánchez E. , Smi th A. C. , Line-start permanent-magnet machines using a canned rotor, IEEE Trans. Ind. Appl., 45 (2009), No. 3, 903-910
  • [18] Zagradišnik I . , Hadžiselimovic M. , Ritonja J . , Slemnik B. , The emLook software package for the analytical and numerical analyses of electrical machines, Przegląd Elektrotechniczny, 86 (2010), No. 12, 175-178
  • [19] Virtic P. , Štumberger B. , 2D analytical solution of magnetic field in linear permanent magnet synchronous machine; comparison of analytical and numerical solution of magnetic field by permanent magnets, Przegląd Elektrotechniczny, 83 (2007), No. 7-8, 139-142
  • [20] Isfahani A. H. , Vaez -Zadeh S. , Effects of Magnetizing Inductance on Start-up and Synchronization of Line-Start Permanent-Magnet Synchronous Motors, IEEE Trans. Magn., Accepted for publication, DOI: 10.1109/TMAG.2010.2091651
  • [21] Zagradišnik I . , Slemnik B. , Elektricni rotacijski stroji (in Slovene), Maribor: FERI, 2005.
  • [22] Dorrell D. G. , Calculation and effects of end-ring impedance in cage induction motors, IEEE Tran. Magn., 41 (2005), No. 3, 1176-1183
  • [23] Honsinger V. B. , Permanent magnet machines: Asychronous operation, IEEE Tran. Power Ap. Syst., PAS-99 (1980), No. 4, 1503-1509
  • [24] Jimoh A. A. , Findlay R. D. , Parasitic torques in saturated induction motors, IEEE Tran. Energy Conver., 3 (1988), No. 1, 157-163
  • [25] Dorrell D. G. , Miller T. J . E. , Rasmussen C. B. , Inter-bar currents in induction machines, IEEE Trans. Ind. Appl., 39 (2003), No. 3, 677-684
  • [26] Štefanko S. , Slemnik B. , Zagradišnik I . , Stray losses due to inter-bar currents of skewed cage induction motors at no-load, Electr. Eng., 82 (2000), No. 5, 257-262
  • [27] da Silva C. A. , Cardoso J . R. , Carlson R. , Analysis of a three-phase LSPMM by numerical method, IEEE Tran. Magn., 45 (2009), No. 3, 1792-1795
  • [28] Štumberger G. , Štumberger B. , Dolinar D. , Hamler A. , Cross magnetization effect on inductances of linear synchronous reluctance motor under load conditions, IEEE Tran. Magn., 37 (2001), No. 5, 3658-3662
  • [29] M. A. Jabbar , Z. Liu, J . Dong, Time-stepping finiteelement analysis for the dynamic performance of a permanent magnet synchronous motor, IEEE Tran. Magn., 39 (2003), No. 5, 2621-2623
  • [30] Hadžiselimovic M. , Štumberger G. , Štumberger B. , Zagradišnik I . , Magnetically nonlinear dynamic model of synchronous motor with permanent magnets, J. Magn. Magn. Mater., 316 (2007), No. 2, e257-e260
  • [31] Pišek P. , Virtic P. , Štumberger B. , Back EMF and torque characteristic of N-N and N-S type of multi-disc axial flux permanent magnet synchronous generator, Przegl$d Elektrotechniczny, 84 (2008), No. 12, 221-223
  • [32] Štumberger B. , Hamler A. , Gorican V. , Jesenik M. , Trlep M. , Accuracy of iron loss estimation in induction motors by using different iron loss models, J. Magn. Magn. Mater., 272-276 (2004), e1723-e1725
  • [33] Štumberger B. , Štumberger G. , Hadžiselimović M. , Zagradišnik I . , Torque ripple reduction in exterior-rotor permanent magnet synchronous motor, J. Magn. Magn. Mater., 304 (2006), No. 2, e826-e828
  • [34] Štumberger B. , Štumberger G. , Hadžiselimovic M. , Trlep M. , Hamler A. , Permanent magnet brushless DC motor - integrated motor drive electrical subsystem simulation, Przegl$d Elektrotechniczny, 83 (2007), No. 7-8, 135-138
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-PWA7-0050-0034
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