DocumentCode
62669
Title
Eddy Current Loss Estimation of Edge Burr-Affected Magnetic Laminations Based on Equivalent Electrical Network—Part I: Fundamental Concepts and FEM Modeling
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
642
Lastpage
650
Abstract
Cutting and punching of the electrical steel can cause edge burrs which lead to interlaminar short circuits between the laminations. In this paper, based on an equivalent electric circuit of the eddy current path, an analytical method has been developed to estimate the eddy current power loss of the magnetic cores, caused by the interlaminar faults, in a wide range of flux density and magnetizing frequency. Important factors, such as skin effect, nonuniform flux density distribution, complex relative permeability, and the nonlinear relation of B (H), which are often neglected in the literature, are highlighted. Fundamental concepts of the interlaminar fault and its consequences, the effect of interlaminar faults on the configuration of magnetic cores, and finite-element method verification are presented in this Part I paper. Modeling of eddy current, together with experimental results of eddy current measurements of packs of shorted laminations, are reported in Part II.
Keywords
cutting; eddy current losses; fault diagnosis; finite element analysis; laminations; magnetic cores; punching; skin effect; steel; FEM modeling; complex relative permeability; eddy current loss estimation; eddy current measurements; eddy current modeling; eddy current path; eddy current power loss estimation; edge burr-affected magnetic laminations; electrical steel cutting; electrical steel punching; equivalent electric circuit; equivalent electrical network; finite-element method verification; flux density; interlaminar fault; interlaminar faults; interlaminar short circuits; magnetic core configuration; magnetic cores; magnetizing frequency; nonlinear relation; nonuniform flux density distribution; skin effect; Eddy currents; Lamination; Magnetic cores; Magnetic flux; Magnetic resonance imaging; Materials; Permeability; Complex relative permeability; eddy current power loss; edge burr; finite-element method (FEM) modeling; high frequencies; interlaminar fault; skin effect;
fLanguage
English
Journal_Title
Power Delivery, IEEE Transactions on
Publisher
ieee
ISSN
0885-8977
Type
jour
DOI
10.1109/TPWRD.2013.2272663
Filename
6571275
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