DocumentCode :
1107618
Title :
Characterization of Surface-Breaking Cracks Using One Tangential Component of Magnetic Leakage Field Measurements
Author :
Amineh, Reza Khalaj ; Nikolova, Natalia K. ; Reilly, James P. ; Hare, James R.
Author_Institution :
McMaster Univ., Hamilton
Volume :
44
Issue :
4
fYear :
2008
fDate :
4/1/2008 12:00:00 AM
Firstpage :
516
Lastpage :
524
Abstract :
We propose a procedure for full characterization of rectangular surface-breaking cracks based on measurements of only one tangential component of the magnetic field with the magnetic flux leakage (MFL) technique. The parameters of interest include orientation, length, and depth of the cracks. We assume that the length and the depth of the investigated cracks are much larger than the crack width, so that the variation of the MFL response with respect to the width is negligible. Our procedure employs fast direct methods that provide reliable estimation of the crack parameters in three separate consecutive steps. We propose denoising and correction techniques as well. We confirmed the accuracy of the methods by simulations based on the finite-element method (FEM) as well as by experimental MFL observations. A procedure is proposed for full characterization of rectangular surface breaking cracks based on measurements of only one tangential component of the magnetic field with the magnetic flux leakage (MFL) technique. The parameters of interest include orientation, length and depth of the cracks. We assume that the length and the depth of the investigated cracks are much larger than the crack width such that the variation of the MFL response with respect to the width is negligible. The proposed procedure employs fast direct methods which provide reliable estimation of the crack parameters in three separate consecutive steps. De-noising and correction techniques are proposed as well. The accuracy of the proposed estimation methods is examined via simulations based on the finite element method (FEM) as well as experimental MFL data.
Keywords :
ferromagnetic materials; finite element analysis; magnetic leakage; surface cracks; denoising; fast direct methods; ferromagnetic materials; finite-element method; magnetic field; magnetic flux leakage technique; surface-breaking cracks; tangential component; Crack sizing; magnetic flux leakage technique; nondestructive testing; parameter estimation;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2008.915592
Filename :
4475320
Link To Document :
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