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Tytuł artykułu

Characterization of a New Linear Switched Reluctance Actuator

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
PL
Charakterystyka nowego liniowego siłownika reluktancyjnego
Języki publikacji
EN
Abstrakty
EN
This paper presents the EM analysis of a new designed and constructed single-sided linear switched reluctance actuator. A brief consideration on the adopted analytical design methodology is stated. A characterization of the actuator is made, analyzing the distribution of magnetic fields and connected translation forces, through the determination of energy and co-energy variation, performing a numerical analysis based on Finite Element Method. The influence of an introduced saturation factor in the actuator mechanical force development is established.
PL
Artykuł prezentuje analizę elektromagnetyczną nowej odmiany jednostronnie przełączanego siłownika reluktancyjnego. Przedstawiono charakterystykę siłownika, analizę rozkładu pola magnetycznego oraz obliczenia siły. Analizę przeprowadzono wykorzystując metodę elementu skończonego. Wprowadzono współczynnik nasycenia umożliwiający analizę właściwości mechanicznych.
Rocznik
Strony
44--49
Opis fizyczny
Bibliogr. 28 poz., il., tab., wykr.
Twórcy
autor
autor
autor
  • University of Beira Interior, Electromechanical Engineering Department, Calçada Fonte do Lameiro, 6201-001 Covilhă, Portugal, rc@ubi.pt
Bibliografia
  • [1] Cassat A., Corsi N., Moser R., Wavre N., Direct Linear Drives: Market and Performance Status, Proceedings of the 4th International Symposium in Linear Drives for Industry Applications, 8-10 September 2003, Birmingham, UK, 1-11.
  • [2] Boldea I., Nasar S.A., Linear electric actuators and generators, Cambridge University Press, 1997.
  • [3] Calado, M. R., Actuador Linear de Relutância Variável Comutado. Modelizaçăo, Dimensionamento, Construçăo e Ensaio, PhD Thesis (in Portuguese), July 2002, University of Beira Interior, Covilhă, Portugal.
  • [4] Faiz J., Finch J. W., Aspects of design optimization for multiple tooth per stator pole switched reluctance motors, Electrical Power Systems Research 42 (1997), 77-86.
  • [5] Faiz J., Moayed-Zahed K., Design of switched reluctance machine for starter/generator of hybrid electric vehicle, Electric Power Systems Research 75 (2005), 153-160.
  • [6] Binder A., Switched Reluctance Driver and Inverter-fed Induction Machine – a Comparison of design parameters and drive performance, Electrical Engineering 82 (2000), 239-248.
  • [7] Parreira B., Silviano R., Pires A. J., Branco P. J., Obtaining the Magnetic Characeristics of an 8/6 Switched Reluctance Machine: From FEM Analysis to the Experimental Tests, IEEE Transactions on Industrial Electronics, 52 (2005), No. 6, 1635-1643.
  • [8] Takayama K., Takasaki Y., Ueda R., Sonoda T., Iwakane T., A New Type Switched Reluctance Motor, Conf. Rec. 1998 IEEE-IAS Annual Meeting, Pittsburgh, October 1998, 71-78.
  • [9] Takayama K., Takasaki Y., Ueda R., Sonoda T., Thrust Force Distribution on the Surface of Stator and Rotor Poles of Switched Reluctance Motor, IEEE Transactions on Magnetics, 25 (1989), No. 5, 3997-3999.
  • [10] Liu C. T., Chen Y. N., On the Feasible Polygon Classification of Linear Switched Reluctance Machines, IEEE Transactions on Energy Conversion, 14 (1999), No. 4, 1282-1287.
  • [11] Deshpande U. S., Cathey J. J., Richter E., High-Force Density Linear Switched Reluctance Machine, IEEE Transactions on Industry Applications, 31 (1995), No. 10, 345-452.
  • [12] Lucidarme J., Amouri A., Poloujadoff M., Optimum Design of Longitudinal Field Variable Reluctance Motors-Applicatiion to a High Performance Actuator, IEEE Transactions on Energy Conversion, 8 (1993), No. 3, 357-361.
  • [13] Deshpande U., Two-Dimensional Finite-Element Analysis of a High-Force-Density Linear Switched Reluctance Machine Including Three-Dimensional Effects, IEEE Transactions on Industry Applications, 36 (2000), No. 4, 1047-1052.
  • [14] Liu C. T., Su K. S., Chen J. W., Operational Stability Enhancement Analysis of a Transverse Flux Linear Switched-Reluctance Motor, IEEE Transactions on Magnetics, 36 (2000), No. 5, 2699-3702.
  • [15] Gan W. C., Cheung N. C., Design of a Linear Switched Reluctance Motor for High Precision Applications, Proc. of the IEEE International Electric Machines and Drives Conference, 17-20 June 2001, Cambridge, USA, 701-704.
  • [16] Corda J., Skopljak E., Linear Switched Reluctance Actuator, Proc. of the 6th Int. Conf. Electrical Machines and Drives, Oxford, U.K., September 1993, 535-539.
  • [17] Lee B. S., Bae H. K., Vijayraghavan P., Krishnan R., Design of a Linear Switched Reluctance Machine, IEEE Transactions on Industry Applications, 36 (2000), No. 6, 1371-1580.
  • [18] Krishnan R., Arumugan R., Lindsay J. F., Design Procedure for Switched Reluctance Motors, IEEE Transactions on Industry Applications, 24 (1998), 456-461.
  • [19] Bae H. K., Lee B. S., Vijayraghavan P., Krishnan R., A Linear Switched Reluctance Motor: Converter and Control, IEEE Transactions on Industry Applications, 36 (2000), No. 5, 1351- 1359.
  • [20] Daldaban F., Ustkoyuncu N., A new double sided linear switched reluctance motor with low cost, Energy Conversion and Management 47 (2006), 2983-2990.
  • [21] Calado M. R. A., Cabrita C. M. P., Espírito-Santo A. E., A New Saturation Factor for Linear Switched Reluctance Characterization, Proc. of the International Conference on Electrical Drives and Power Electronics, 24-26 September 2003, High Tatras, Slovakia.
  • [22] Calado, M. R., Gonçalves J. G. and Cabrita, C. P., The Optimized Linear Switched Reluctance Actuator, Proc. of the 7th Jornadas Hispano-Lusas de Engenharia Electrotécnica, 4-6 July 2001, Madrid, Spain, vol 1, 63-69.
  • [23] Calado, M. R., and Cabrita, C. P., A New Linear Switched Reluctance Actuator: Performance Analysis, Proc. of the Fourth International Symposium on Linear Drives for Industry Applications, 8-10 September 2003, Birmingham, UK, 53-56.
  • [24] Lawrenson P. J., Stephenson J. M., Blenkinson P. T., Corda J., Fulton N. N., Variable-speed switched reluctance motors, IEE Proceedings, Part B, 127 (1980), No. 4, 252-265.
  • [25] Mese E., Torrey D. A., An approach for sensorless position estimation for switched reluctance motors using artificial neural networks, IEEE Transactions on Power Electronics, 17 (2002), 66-75.
  • [26] Xue X. D., Cheng K. W. E., Ho S. L., A Self-Training Numerical Method to Calculate the Magnetic Characteristics for Switched Reluctance Motor Drives, IEEE Transactions on Magnetics, 40 (2004), No. 2, 734-737.
  • [27] Calado, M. R., Cabrita, C. P., Finite-Element Analysis of a Linear Switched Reluctance Actuator, Proc. of the 9h International Conference of Power Electronics and Motion Control, September 2000, Kosice, Slovakia vol 5, pp.69-73.
  • [28] Calado M., Espírito-Santo A., Cabrita C., Performance Analysis of a Linear Switched Reluctance Actuator. A Basis for the Control Design. WSEAS Transactions on Circuits and Systems, 7 (2005), No. 4, 734-741.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPOH-0055-0009
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