Modelling and experimental study of magnetic induction spectroscopy for rail decarburisation measurement

This paper presents a modeling and experimental study, based on a magnetic induction spectroscopy (MIS) technique, for non-destructive evaluation of rail decarburization. The inductive sensor contained an H-shaped ferrite core, which was excited with a multi-frequency waveform over the range of appr...

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Published in2014 IEEE Far East Forum on Nondestructive Evaluation/Testing pp. 345 - 348
Main Authors Zhu, W., Yin, W., Davis, C. L., Hunt, P., Dewey, S., Peyton, A. J.
Format Conference Proceeding
LanguageEnglish
Published IEEE 01.06.2014
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ISBN1479947318
9781479947317
DOI10.1109/FENDT.2014.6928293

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Abstract This paper presents a modeling and experimental study, based on a magnetic induction spectroscopy (MIS) technique, for non-destructive evaluation of rail decarburization. The inductive sensor contained an H-shaped ferrite core, which was excited with a multi-frequency waveform over the range of approximately 1 kHz to 100 kHz. Finite-element (FE) simulation was carried out to understand the link between EM sensor output and the level of decarburization. Rail samples with different levels of decarburisation, due to different bloom reheat times (85 min-412 min) were tested in the lab. It was found that the zero-crossing frequency in the MIS response is linearly proportional to the decarburisation level of the rails by FE simulation, theoretic analysis and experiment. This finding is helpful in understanding the response of the EM sensor to rail decarburisation and may lead to a non-contact, non destructive method for use during rail manufacturing.
AbstractList This paper presents a modeling and experimental study, based on a magnetic induction spectroscopy (MIS) technique, for non-destructive evaluation of rail decarburization. The inductive sensor contained an H-shaped ferrite core, which was excited with a multi-frequency waveform over the range of approximately 1 kHz to 100 kHz. Finite-element (FE) simulation was carried out to understand the link between EM sensor output and the level of decarburization. Rail samples with different levels of decarburisation, due to different bloom reheat times (85 min-412 min) were tested in the lab. It was found that the zero-crossing frequency in the MIS response is linearly proportional to the decarburisation level of the rails by FE simulation, theoretic analysis and experiment. This finding is helpful in understanding the response of the EM sensor to rail decarburisation and may lead to a non-contact, non destructive method for use during rail manufacturing.
Author Peyton, A. J.
Dewey, S.
Yin, W.
Zhu, W.
Hunt, P.
Davis, C. L.
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  organization: RD&T, Tata Steel, Swinden, UK
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  fullname: Peyton, A. J.
  organization: Sch. of Electr. & Electron. Eng., Univ. of Manchester, Manchester, UK
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Snippet This paper presents a modeling and experimental study, based on a magnetic induction spectroscopy (MIS) technique, for non-destructive evaluation of rail...
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StartPage 345
SubjectTerms Coils
eddy current
electromagnetic sensor
Ferrites
Finite element analysis
Finite-element modeling (FEM)
Frequency measurement
Permeability
rail decarburisation
Rails
Steel
Title Modelling and experimental study of magnetic induction spectroscopy for rail decarburisation measurement
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