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Parameters identification of coreless axial flux permanent magnet generator

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Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This paper presents an analytical model of a three-phase axial flux coreless generator excited by permanent magnets, with special focus on determining the model parameters. An important aspect of this model is the derivation of a coefficient that corrects the flux on the inside and outside edges of the magnets. The obtained parameters are verified by performing field analyses and measurements. A comparison of the results show satisfactory convergence, which confirms the accuracy of the proposed analytical model.
Słowa kluczowe
Rocznik
Strony
391–--402
Opis fizyczny
Bibliogr. 14 poz., rys., tab., wz.
Twórcy
  • Cracow University of Technology
autor
  • Cracow University of Technology
autor
  • Cracow University of Technology
Bibliografia
  • [1] Wojciechowski R.M., Analysis and optimisation of an axial flux permanent magnet coreless motor based on the field model using the superposition principle and genetic algorithm, Archives of Electrical Engineering, vol. 65, no. 3, pp. 601–611 (2016).
  • [2] Paplicki P., Modified concept of axial-flux permanent magnet machine with field weakening capability, Archives of Electrical Engineering, vol. 63, no. 2, pp. 177–185 (2014).
  • [3] Borkowski D.,Węgiel T., Small hydropower plant with integrated turbine-generators working at variable speed, IEEE Transaction of Energy Conversion, vol. 28, no. 2, pp. 452–459 (2013).
  • [4] Mazgaj W., Szular Z., Węgiel T., Sobczyk T., Small hydropower plant with variable speed PM generator, Przegląd Elektrotechniczny, R. 87, no. 5, pp. 282–287 (2011).
  • [5] Gieras J., Wang R., Kamper M., Axial flux permanent magnet brushless machines, Kluwer Academic Publishers (2004).
  • [6] Kamper M.J., Wang R.-J., Rossouw F.G., Analysis and performance of axial flux permanent-magnet machine with air-cored nonoverlapping concentrated stator windings, IEEE Transactions on Industry Applications, vol. 44, iss. 5, pp. 1495–1504 (2008).
  • [7] Choi J.Y., Lee S.H., Ko K.J., Jang S.M., Improved analytical model for electromagnetic analysis of axial flux machines with double-sided permanent magnet rotor and coreless stator windings, IEEE Trans. on Magnetics, vol. 47, no. 10, pp. 2760–2763 (2011).
  • [8] Kanuch J., Ferkova Z., Design and simulation of disk stepper motor with permanent magnets, Archives of Electrical Engineering, vol. 62, no. 2, pp. 281–288 (2013).
  • [9] Zhu Z.Q., Howe D., Ekkehard B., Ackermann B., Instantaneous magnetic field distribution in brushless permanent magnet motors, part I: Open-circuit field, IEEE Trans. Magn., vol. 29, pp. 124–134 (1993).
  • [10] Węgiel T., Space harmonic interactions in permanent magnet generator, Wydawnictwo Politechniki Krakowskiej, Monograph 447, ISSN 0860-097X, Cracow (2013).
  • [11] Węgiel T., Space harmonic interactions in axial flux permanent magnet generator, Technical Transactions, Electrical Engeenering 2-E, pp. 65–79 (2016).
  • [12] Zhilichev Y.N., Three-dimensional analytic model of permanent magnet axial flux machine, IEEE Trans. Magn., vol. 34, no. 6, pp. 3897–3901 (1998).
  • [13] Azzouzi J., Barakat G., Dayko B., Quasi-3D analytical modeling of the magnetic field of an axial flux permanent-magnet synchronous machine, IEEE Trans. on Energy Conversion, vol. 20, no. 4, pp. 746–752 (2005).
  • [14] Demenko A., Nowak L., Pietrowski W., Calculation of magnetization characteristic of a squirrel cage machine using edge element, The international journal for computation and mathematics in electrical and electronic engineering, vol. 23, no. 4, pp. 1110–1118 (2004).
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2018).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-959648ce-76c1-479d-91d9-c6ba4d25394c
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