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Design Optimization of a Single-Phase Axial Flux Induction Motor with Low Torque Ripple

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
PL
Optymalizacja osiowego silnika indukcyjnego pod kątem obecności tętnień momentu
Języki publikacji
EN
Abstrakty
EN
Beside distinct advantages of single phase axial flux induction motors, they suffer from high torque ripple. In this paper a new detailed model of motor considering saturation, anisotropy and harmonics is developed. Then design optimization is done regarding low torque ripple using a new evolutionary algorithm which is called imperialist competitive algorithm. Not only geometrical dimensions, but also the temperature of different parts of motor is considered as constrains. Optimization results have been validated using three dimensional time-stepping finite element methods.
PL
W artykule analizowano tętnienia momentu napędowego w silniku indukcyjnym osiowym, jednofazowym. Wzięto pod uwagę indukcję nasycenia, anizotropię i obecność harmonicznych. Analizowano wymiary silnika oraz rozkład temperatury.
Rocznik
Strony
168--172
Opis fizyczny
Bibliogr. 21 poz., il., tab., wykr.
Twórcy
autor
  • School of Electrical and Computer Engineering, Faculty of Engineering, University of Tehran, North Kargar Ave., P.O. Box: 14395/515, Tehran, Iran, z_Nasiri@ee.sharif.edu
Bibliografia
  • [1] Valtonen M., Parviainen A. and PyrhOnen J., “Electromagnetic Field Analysis of 3D Structure of Axial-Flux Solid-Rotor Induction Motor”, SPEEDAM 2006, International Symposium on Power Electronics, Electrical Drives, Automation and Motion, S39-12 –S39-16, 2006.
  • [2] Wallace R., Mopan L., Cea G., Perez F., “Design and Construction of Medium Power Axial Flux Induction Motors”, 260-265.
  • [3] Leung W. S., Chan J.C.C., “Axial-Field Electrical Machines-Design and Application”, IEEE Trans. on Power Apparatus and Systems, PAS-99(1980), No. 4,1679-1685.
  • [4] Chan C.C., “Single-phase axial-field motor for ceiling fan drives”, Proceedings CNR International Symposium on Electrical Machines for special purposes, 1981, 63-71.
  • [5] Clark R.J., “Development in- alternating current induction motors”, British Patent No. 1465268.
  • [6] Leung W.S., Chan C.C., “A New Design Approach For Axial-Field Electrical Machines”, IEEE Transactions on Power Apparatus and Systems, PAS-99(1980), No. 4, 1679-1685, July/Aug 1980.
  • [7] Huang S., Luo J., Leonardi F. and Lipo T. A., “A General Approach to Sizing and Power Density Equations for Comparison of Electrical Machines”,IEEE Conference 1996, 836-842.
  • [8] Surong H., Guodong X., “Optimization of Power Density for Axial-Flux Machine through Generalized Sizing Equations” Journal of Shangiiai University, 1(1997), No. 3, 232-236, Dec. 1997.
  • [9] Huang S., Luo J., Leonardi F. and Lipo T. A., “A General Approach to Sizing and Power Density Equations for Comparison of Electrical Machines”, IEEE Transaction on Industry Applications, 34(1998), No. 1, 92-97, Jan./Feb. 1998.
  • [10] Huang S., Luo J., Leonardi F., Lipo T. A., “A Comparison of Power Density for Axial Flux Machines Based on General Purpose Sizing Equations”, IEEE Transactions on Energy Conversion, 14(1999), No. 2,185-192, June 1999.
  • [11] Benoudjit A., Guettafi A., Nait SaÏd N., “Axial Flux Induction Motor for On-Wheel Drive Propulsion System”, Electric Machines and Power Systems, 28(2000), Taylor & Francis,1107–1125, 2000.
  • [12] Valtonen M., “Performance Characteristics of an Axial-Flux Solid-Rotor-Core Induction Motor”, Phd thesis, Lappeenranta University of Technology, Lappeenranta, Finland, 2007.
  • [13] Valtonen M., Parviainen A. and PyrhOnen J., “Influence of the Air-Gap Length to the Performance of an Axial-Flux Induction Motor”, Proceedings of the 2008 International Conference on Electrical Machines, 1-5, 2008.
  • [14] Valtonen M., Parviainen A. and PyrhOnen J., “Inverter Switching Frequency Effects on the Rotor Losses of an Axial-Flux Solid-Rotor Core Induction Motor”, Powereng 2007, April 12-14, 2007, Setubal, Portugal, pp. 476-480.
  • [15] Valtonen M., Parviainen A. and PyrhOnen J., “The Effects of the Number of Rotor Slots on the Performance Characteristics of Axial-Flux Aluminium-Cage Solid-Rotor Core Induction”, IEEE Conference, pp. 668-672, 2007.
  • [16] Mirzayee M., Mirsalim M., and Abdollabi S.B., “Presentation of analytical and finite element methods for analysis of a disk induction motor performance”, the journal of Amir-Kabir university, 15(2004), No. 58-A, 244-257, (in Persian).
  • [17] Idir K., Dawson G. E., and Eastham A. R., “Modeling And Performance of Linear Induction Motor with Saturable Primary”, IEEE Trans. on Industry Applications, 29 (1993), No. 6, 1123-1128.
  • [18] Gieras J. F., Wang R., Kamper M. J., “Axial Flux Permanent Magnet Brushless Machines”, Springer Science, Second Edition, 2008.
  • [19] Atashpaz-Gargari E., Lucas C., "Imperialist Competitive Algorithm: An Algorithm for Optimization Inspired by Imperialistic Competition", IEEE conference CEC, 2007.
  • [20] Chan C.C., “Design of electrical machines by the finite element method using distributed computing”, Elsevier, Computers in Industry, 17 (1991), 367-374.
  • [21] Lukaniszyn M., Jagiela M., Wrobel R., “A disc type motor with co-axial flux in the stator influence of magnetic circuit parameters on the torque”, Springer-Verlag, Electrical Engineering 84 (2002), 91-100.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPOH-0063-0013
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