DocumentCode
960257
Title
Flux penetration and losses in solid nonlinear ferromagnetics using state space techniques applied to electrical machines
Author
Demerdash, N.A. ; Lau, N.K.
Author_Institution
Virginia Polytechnic Institute and State University, Blacksburg, Virginia
Volume
12
Issue
6
fYear
1976
fDate
11/1/1976 12:00:00 AM
Firstpage
1039
Lastpage
1041
Abstract
A state space model is developed in terms of magnetic vector potential (M.V.P.),
, for the calculation of instantaneous values of eddy currents, flux penetration, and losses in nonlinear solid ferromagnetics. Finite differences in space and sampled data techniques in time are used to obtain the solutions. This formulation is very effective in simplifying the computer programming implementation to electrical machinery problems, which contain a mixture of regions of air-gaps and conductors. An application of this technique to a solid steel damper bar in a salient-pole synchronous machine of the type used in hydroelectric pumped-storage stations is presented. Resulting damper bar losses, due to sinusoidal excitation are given and found to be in good agreement with experimental test data. Also, instantaneous flux density and current density wave forms are given for various depths into the bar with vivid display of the effects of nonlinearity. Equivalent bar resistances and reactances determined by the present method are compared with corresponding results obtained by earlier techniques. Favorable comparison is achieved.
, for the calculation of instantaneous values of eddy currents, flux penetration, and losses in nonlinear solid ferromagnetics. Finite differences in space and sampled data techniques in time are used to obtain the solutions. This formulation is very effective in simplifying the computer programming implementation to electrical machinery problems, which contain a mixture of regions of air-gaps and conductors. An application of this technique to a solid steel damper bar in a salient-pole synchronous machine of the type used in hydroelectric pumped-storage stations is presented. Resulting damper bar losses, due to sinusoidal excitation are given and found to be in good agreement with experimental test data. Also, instantaneous flux density and current density wave forms are given for various depths into the bar with vivid display of the effects of nonlinearity. Equivalent bar resistances and reactances determined by the present method are compared with corresponding results obtained by earlier techniques. Favorable comparison is achieved.Keywords
Eddy currents; Magnetic losses; Nonlinear magnetics; Rotating-machines, nonlinear analysis; Air gaps; Application software; Conductors; Eddy currents; Finite difference methods; Machinery; Magnetic flux; Programming; Solid modeling; State-space methods;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.1976.1059240
Filename
1059240
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