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Influence of the stator winding resistance on the field-weakening operation of the DRFOC induction motor drive

Treść / Zawartość
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In this paper, an analysis of the influence of the stator winding resistance on the field-weakening operation of the induction motor drive based on the Direct Rotor Flux Oriented Control (DRFOC) is presented. Two scenarions of the optimal field-weakening algorithm (with and without stator winding resistance taken into account) have been compared and verified through simulation and experiment, under different operation conditions of the DRFOC drive system with 3 [kW] induction motor.
Rocznik
Strony
815--823
Opis fizyczny
Bibliogr. 15 poz., rys., tab.
Twórcy
autor
  • Wroclaw University of Technology, 19 Smoluchowskiego St., 50-372 Wroclaw, Poland
Bibliografia
  • [1] T. Orlowska-Kowalska, Speed Sensorless Induction MotorDrives, Wrocław University of Technology Press, Wrocław, 2003, (in Polish).
  • [2] M.P. Kazmierkowski and H. Tunia, Automatic Control ofConverter-fed Drives, Elsevier, London, 1994.
  • [3] M. Dybkowski, T. Orłowska-Kowalska, M.P. Kazmierkowski, and D. Stando, “Induction motor drive control in traction applications”, Scientific Works Inst. of Electr. Mach., Drives andMeas. of Wroclaw Univ. of Tech.: Studies and Materials 64 (30), 139-150 (2010).
  • [4] T. Orlowska-Kowalska and M. Dybkowski, “Performance analysis of the sensorless adaptive sliding-mode neuro-fuzzy control of the induction motor drive with MRAS-type speed estimator”, Bull. Pol. Ac.: Tech. 60 (1), 61-70 (2012).
  • [5] X. Xu, R. de Doncker and D.W. Novotny, “Stator flux orientation control of induction machines in the field weakening region”, Proc. IEEE Ind. Appl. Society Annual Meet. 1, 437-443 (1988).
  • [6] X.Y. Xu and D.W. Novotny, “Implementation of direct stator flux orientation control on a versatile DSP based system”, IEEE Trans. Ind. Appl. 27 (4), 694-700 (1991).
  • [7] X.Y. Xu and D.W. Novotny, “Selection of the flux reference for induction machine drives in the field weakening region”, IEEE Trans. Ind. Appl. 28 (6), 1353-1358 (1992).
  • [8] S.H. Kim and S.K. Sul, “Maximum torque control of an induction machine in the field weakening region”, IEEE Trans. Ind. Appl. 31 (4), 787-794 (1995).
  • [9] H. Grotstollen and A. Bunte, “Control of induction motor with orientation on rotor flux or on stator flux in a very wide field weakening region - experimental results”, Proc. IEEEInt. Symp. Ind. Electr. 2, 911-916 (1996).
  • [10] H. Grotstollen and J. Wiesing, “Torque capability and control of a saturated induction-motor over a wide-range of flux weakening”, IEEE Trans. Ind. Electr. 42 (4), 374-381 (1995).
  • [11] S.H. Kim and S.K. Sul, “Voltage control strategy for maximum torque operation of an induction machine in the fieldweakening region”, IEEE Trans. Ind. Electr. 44 (4), 512-518 (1997).
  • [12] G. Gallegos-Lopez, F.S. Gunawan, and J.E. Walters, “Current control of induction machines in the field-weakened region”, IEEE Trans. Ind. Appl. 43 (4), 981-989 (2007).
  • [13] L. Harnefors, K. Pietilainen, and L. Gertmar, “Torquemaximizing field-weakening control: design, analysis, and parameter selection”, IEEE Trans. Ind. Electr. 48 (1), 161-168 (2001).
  • [14] K. Nguyen-Thac, G. Tarchala, and T. Orłowska-Kowalska, “Comparative analysis of the chosen field-weakening methods for the direct rotor flux oriented control drive system”, Archives of Electr. Eng. 61 (4), 443-454 (2012).
  • [15] G. Radomski, “Control and modulation methods of voltage source converter”, Bull. Pol. Ac.: Tech. 57 (4), 323-336 (2009).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPG8-0096-0046
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