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http://dx.doi.org/10.4283/JMAG.2013.18.3.260

Analytical Investigation on Fundamental Electrical Characteristics of Large Air-gap Superconducting Synchronous Machine  

Yazdanian, M. (Electrical Engineering Department, Sharif University of Technology)
Elhaminia, P. (Electrical Engineering Department, Sharif University of Technology)
Zolghadri, M.R. (Electrical Engineering Department, Sharif University of Technology)
Fardmanesh, M. (Electrical Engineering Department, Sharif University of Technology)
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Abstract
In this paper a general 2-D model of a large air-gap synchronous machine either with non-magnetic or magnetic core rotor is investigated and electrical characteristics of the machine are analytically calculated. Considering the general model, analytical equations for magnetic field density in different regions of the large air-gap machine are calculated. In addition, self and mutual inductances in the proposed model of the machine have been developed, which are the most important parameters in the electromagnetic design and transient analysis of synchronous machines. Finite element simulation has also been performed to verify the obtained results from the equations. Analytical results show good agreement with FEM results.
Keywords
large air-gap machine; Finite Element Modeling (FEM); electromagnetic design of machine; self and mutual inductance calculation; synchronous machine;
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  • Reference
1 J. Kirtley and F. Edeskuty, Proceedings of the IEEE 77, (1989) pp. 1143-1154.
2 J. Bumby, Superconducting Rotating Electrical Machines. Clarendon Press, Oxford (1983).
3 S. Minnich, T. Keim, M. Chari, B. B. Gamble, M. J. Jefferies, D. Jones, E. T. Laskaris, and P. A. IEEE Trans. Magn. 15, 703 (1979).   DOI
4 Kalsi, Applications of High Temperature Superconductors to Electric Power Equipment, Wiley-IEEE (2011).
5 H. M. Kim, Y. S. Yoon, Y. K. Kwon, Y. C. Kim, S. H. Lee, J. P. Hong, J. B. Song, and H. G. Lee, IEEE Trans. Appl. Supercond. 19, 1683 (2011).
6 Y. Mitani, K. Tsuji, and Y. Murakami, IEEE Trans. Magn. 27, 2349 (1991).   DOI   ScienceOn
7 J. L. Kirtley, Proceedings of the IEEE 81 (1993) pp. 449-461.   DOI   ScienceOn
8 S. K. Safi and J. R. Bumby, IEE Proceddings C 139, Sep 1992.
9 M. Yazdanian, P. Elhaninia, M. R. Zolghadri, and M. Fardmanesh, IEEE Trans. Appl. Supercond. 23, 5200406 (2013).   DOI   ScienceOn
10 K. R. Davey and B. B. Gamble, IEEE Trans. Magn. 41, 2391 (2005).   DOI   ScienceOn
11 David K. Cheng, Field and Wave Electromagnetics, Addison-Wesley, 2nd Ed., Cambridge, MA (1989).
12 J. Pyrhoenen, T. Jokinen, and V. Hrabovcova, Design of Rotating Electrical Machines, John Wiley & Sons (2008).