DocumentCode :
1162794
Title :
Eddy currents induced in a finite length layered rod by a coaxial coil
Author :
Sun, Haiyan ; Bowler, John R. ; Theodoulidis, Theodoros P.
Author_Institution :
Center for Nondestructive Evaluation, Iowa State Univ., Ames, IA, USA
Volume :
41
Issue :
9
fYear :
2005
Firstpage :
2455
Lastpage :
2461
Abstract :
We describe the calculation of eddy currents in a two-layer conducting rod of finite length excited by a coaxial circular coil carrying an alternating current. The calculation uses the truncated region eigenfunction expansion (TREE) method. By truncating the solution region to a finite length in the axial direction, we can express the magnetic vector potential as a series expansion of orthogonal eigenfunctions instead of as a Fourier integral. The restricted domain can be arbitrarily large to yield results that are as close to the infinite domain results as desired. Integral form solutions for an infinite rod are well known and relatively simple. For a finite length cylindrical conductor, however, additional boundary conditions must be satisfied at the ends. We do this by comparing series expansions term by term to match the solutions across the end of the cylinder. We derive closed-form expressions for the electromagnetic field in the presence of a finite two-layer rod. A special case of the solution is that for a conductive tube. We illustrate the end effect by calculating the coil impedance variation with respect to the axial location of the coil. The results are in very good agreement with those obtained by using a two-dimensional finite-element code.
Keywords :
coils; conductors (electric); eddy currents; eigenvalues and eigenfunctions; electric impedance; electromagnetic fields; finite element analysis; magnetic domains; 2D finite-element code; Fourier integral; TREE method; alternating current; boundary conditions; closed-form expressions; coaxial circular coil; coil axial location; coil impedance variation; conductive tube; cylindrical conductor; eddy currents; electromagnetic field; end effect; finite rod; integral form solution; magnetic vector potential; orthogonal eigenfunctions; series expansion; truncated region eigenfunction expansion method; two-layer conducting rod; Boundary conditions; Closed-form solution; Coaxial components; Coils; Conductors; Eddy currents; Eigenvalues and eigenfunctions; Electromagnetic fields; Integral equations; Magnetic domains; Coil impedance; eddy current; eigenfunction expansion; finite rod;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2005.855439
Filename :
1506915
Link To Document :
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