DocumentCode
1524086
Title
Vector-potential boundary-integral evaluation of eddy-current interaction with a crack
Author
Bowler, J.R. ; Yoshida, Y. ; Harfield, N.
Author_Institution
Dept. of Phys., Surrey Univ., Guildford, UK
Volume
33
Issue
5
fYear
1997
fDate
9/1/1997 12:00:00 AM
Firstpage
4287
Lastpage
4294
Abstract
In eddy-current nondestructive evaluation, an excitation coil, used to induce current in a conductor, changes impedance in the presence of a crack. The impedance change can be calculated from a knowledge of the coil parameters, the excitation frequency, and the crack geometry. Two boundary integral formulations of the problem are compared. The first formulation uses an electric field integral equation, and the second expresses the magnetic vector potential in integral form using an integral kernel with a weaker singularity. The vector potential formulation, presented here for the first time, leads to a more complicated equation but has a singular kernel that is easier to deal with. In addition, the new approach opens up a number of possibilities for further analytical developments. An example calculation is performed for a long, surface-breaking crack, and the results are compared to available analytical solutions. Very good agreement is found between the numerical solution of the integral equation and the analytical results
Keywords
Green´s function methods; boundary integral equations; crack detection; eddy current testing; vectors; crack geometry; dyadic Green function; eddy-current crack interaction; eddy-current nondestructive evaluation; electric field integral equation; excitation coil; excitation frequency; impedance change; integral kernel; long surface-breaking crack; magnetic vector potential; numerical solution; singularity; vector-potential boundary-integral evaluation; Antenna theory; Coils; Conductors; Frequency; Geometry; Impedance; Integral equations; Kernel; Scattering; Surface cracks;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/20.620437
Filename
620437
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