DocumentCode :
87758
Title :
Eddy Current Loss Estimation of Edge Burr-Affected Magnetic Laminations Based on Equivalent Electrical Network—Part II: Analytical Modeling and Experimental Results
Author :
hamzehbahmani, Hamed ; Anderson, Patrick ; Hall, Jeffrey ; Fox, D.
Author_Institution :
Wolfson Centre for Magnetics, Cardiff Univ., Cardiff, UK
Volume :
29
Issue :
2
fYear :
2014
fDate :
Apr-14
Firstpage :
651
Lastpage :
659
Abstract :
In Part I of this two-part paper, fundamental concepts of interlaminar fault and its consequences on magnetic cores were presented. An equivalent configuration, which was proved by FEM modelling, was proposed for magnetic cores with interlaminar fault. In this Part II paper, based on the equivalent configuration of the core and equivalent circuit of eddy current path, an analytical model is developed to estimate eddy current power loss of magnetic cores with interlaminar faults in a wide range of magnetizing frequency. Important factors, such as skin effect, nonuniform flux density distribution, complex relative permeability and nonlinear relation of B (H), which are often neglected in the literature, are highlighted. Packs of two, three, and four Epstein-size laminations of conventional grain oriented were shorted together artificially to measure the extra power loss caused by the interlaminar fault and support the analytical modeling. It was found that in the magnetic cores affected by interlaminar fault, the skin effect is a determinant factor in the magnetic properties determinations, even at low frequencies.
Keywords :
eddy current losses; equivalent circuits; fault diagnosis; finite element analysis; laminations; magnetic cores; magnetic permeability; magnetisation; skin effect; Epstein-size laminations; FEM modelling; analytical modeling; complex relative permeability; eddy current loss estimation; eddy current path; eddy current power loss estimation; edge burr-affected magnetic laminations; equivalent circuit; equivalent electrical network; interlaminar fault; magnetic cores; magnetic property determinations; magnetizing frequency; nonuniform flux density distribution; skin effect; Eddy currents; Equations; Lamination; Magnetic cores; Magnetic hysteresis; Magnetic separation; Mathematical model; Complex relative permeability; eddy current power loss; edge burr; high frequencies; interlaminar fault; loss separation; skin effect;
fLanguage :
English
Journal_Title :
Power Delivery, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8977
Type :
jour
DOI :
10.1109/TPWRD.2013.2279634
Filename :
6658870
Link To Document :
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