Evaluation of the Size of a Defect in Reinforcing Steel Using Magnetic Flux Leakage (MFL) Measurements

This study aimed to evaluate 2D magnetic flux leakage (MFL) signals (B<sub>x</sub>, B<sub>y</sub>) in D19-size reinforcing steel with several defect conditions. The magnetic flux leakage data were collected from the defected and new specimens using an economically designed te...

Full description

Bibliographic Details
Published in:Sensors
Main Authors: Jamal Yousaf, Regidestyoko Wasistha Harseno, Seong-Hoon Kee, Jurng-Jae Yee
Format: Article
Language:English
Published: MDPI AG 2023-06-01
Subjects:
Online Access:https://www.mdpi.com/1424-8220/23/12/5374
_version_ 1850415779157114880
author Jamal Yousaf
Regidestyoko Wasistha Harseno
Seong-Hoon Kee
Jurng-Jae Yee
author_facet Jamal Yousaf
Regidestyoko Wasistha Harseno
Seong-Hoon Kee
Jurng-Jae Yee
author_sort Jamal Yousaf
collection DOAJ
container_title Sensors
description This study aimed to evaluate 2D magnetic flux leakage (MFL) signals (B<sub>x</sub>, B<sub>y</sub>) in D19-size reinforcing steel with several defect conditions. The magnetic flux leakage data were collected from the defected and new specimens using an economically designed test setup incorporating permanent magnets. A two-dimensional finite element model was numerically simulated using COMSOL Multiphysics to validate the experimental tests. Based on the MFL signals (B<sub>x</sub>, B<sub>y</sub>), this study also intended to improve the ability to analyze defect features such as width, depth, and area. Both the numerical and experimental results indicated a high cross-correlation with a median coefficient of 0.920 and a mean coefficient of 0.860. Using signal information to evaluate defect width, the x-component (B<sub>x</sub>) bandwidth was found to increase with increasing defect width and the y-component (B<sub>y</sub>) amplitude rise with increasing depth. In this two-dimensional MFL signal study, both parameters of the two-dimensional defects (width and depth) affected each other and could not be evaluated individually. The defect area was estimated from the overall variation in the signal amplitude of the magnetic flux leakage signals with the x-component (B<sub>x</sub>). The defect areas showed a higher regression coefficient (R<sup>2</sup> = 0.9079) for the x-component (B<sub>x</sub>) amplitude from the 3-axis sensor signal. It was determined that defect features are positively correlated with sensor signals.
format Article
id doaj-art-e04c2a7eeabd4e43890e3d06aa84cf54
institution Directory of Open Access Journals
issn 1424-8220
language English
publishDate 2023-06-01
publisher MDPI AG
record_format Article
spelling doaj-art-e04c2a7eeabd4e43890e3d06aa84cf542025-08-19T22:45:04ZengMDPI AGSensors1424-82202023-06-012312537410.3390/s23125374Evaluation of the Size of a Defect in Reinforcing Steel Using Magnetic Flux Leakage (MFL) MeasurementsJamal Yousaf0Regidestyoko Wasistha Harseno1Seong-Hoon Kee2Jurng-Jae Yee3Department of ICT Integrated Ocean Smart Cities Engineering, Dong-A University, Busan 49304, Republic of KoreaDepartment of ICT Integrated Ocean Smart Cities Engineering, Dong-A University, Busan 49304, Republic of KoreaDepartment of ICT Integrated Ocean Smart Cities Engineering, Dong-A University, Busan 49304, Republic of KoreaDepartment of ICT Integrated Ocean Smart Cities Engineering, Dong-A University, Busan 49304, Republic of KoreaThis study aimed to evaluate 2D magnetic flux leakage (MFL) signals (B<sub>x</sub>, B<sub>y</sub>) in D19-size reinforcing steel with several defect conditions. The magnetic flux leakage data were collected from the defected and new specimens using an economically designed test setup incorporating permanent magnets. A two-dimensional finite element model was numerically simulated using COMSOL Multiphysics to validate the experimental tests. Based on the MFL signals (B<sub>x</sub>, B<sub>y</sub>), this study also intended to improve the ability to analyze defect features such as width, depth, and area. Both the numerical and experimental results indicated a high cross-correlation with a median coefficient of 0.920 and a mean coefficient of 0.860. Using signal information to evaluate defect width, the x-component (B<sub>x</sub>) bandwidth was found to increase with increasing defect width and the y-component (B<sub>y</sub>) amplitude rise with increasing depth. In this two-dimensional MFL signal study, both parameters of the two-dimensional defects (width and depth) affected each other and could not be evaluated individually. The defect area was estimated from the overall variation in the signal amplitude of the magnetic flux leakage signals with the x-component (B<sub>x</sub>). The defect areas showed a higher regression coefficient (R<sup>2</sup> = 0.9079) for the x-component (B<sub>x</sub>) amplitude from the 3-axis sensor signal. It was determined that defect features are positively correlated with sensor signals.https://www.mdpi.com/1424-8220/23/12/5374magnetic flux leakagedefect sizereinforcing steelssensorspermanent magnets
spellingShingle Jamal Yousaf
Regidestyoko Wasistha Harseno
Seong-Hoon Kee
Jurng-Jae Yee
Evaluation of the Size of a Defect in Reinforcing Steel Using Magnetic Flux Leakage (MFL) Measurements
magnetic flux leakage
defect size
reinforcing steels
sensors
permanent magnets
title Evaluation of the Size of a Defect in Reinforcing Steel Using Magnetic Flux Leakage (MFL) Measurements
title_full Evaluation of the Size of a Defect in Reinforcing Steel Using Magnetic Flux Leakage (MFL) Measurements
title_fullStr Evaluation of the Size of a Defect in Reinforcing Steel Using Magnetic Flux Leakage (MFL) Measurements
title_full_unstemmed Evaluation of the Size of a Defect in Reinforcing Steel Using Magnetic Flux Leakage (MFL) Measurements
title_short Evaluation of the Size of a Defect in Reinforcing Steel Using Magnetic Flux Leakage (MFL) Measurements
title_sort evaluation of the size of a defect in reinforcing steel using magnetic flux leakage mfl measurements
topic magnetic flux leakage
defect size
reinforcing steels
sensors
permanent magnets
url https://www.mdpi.com/1424-8220/23/12/5374
work_keys_str_mv AT jamalyousaf evaluationofthesizeofadefectinreinforcingsteelusingmagneticfluxleakagemflmeasurements
AT regidestyokowasisthaharseno evaluationofthesizeofadefectinreinforcingsteelusingmagneticfluxleakagemflmeasurements
AT seonghoonkee evaluationofthesizeofadefectinreinforcingsteelusingmagneticfluxleakagemflmeasurements
AT jurngjaeyee evaluationofthesizeofadefectinreinforcingsteelusingmagneticfluxleakagemflmeasurements