Crack growth monitoring using fundamental shear horizontal guided waves
Author(s)
Cawley, Peter
Chua, chien
Type
Journal Article
Abstract
Monitoring cracks in critical sections of steel structures is a topic of growing interest. Existing high frequency
ultrasonic techniques have good detection sensitivities but poor inspection coverage, requiring an impractical number
of transducers to monitor large areas. Low frequency guided waves are used for corrosion detection in pipelines,
but are insufficiently sensitive for many crack detection applications. The sensitivity can be improved by using higher
frequencies and by placing the receiving transducers closer to the defect. This study evaluates the monitoring
performance of an SH0 mode system at frequencies just below the high-order mode cut-off. Baseline subtraction
with temperature compensation was applied to experimental data generated by a ring of transducers on a 6-inch
diameter pipe. It was found that the residual signals after baseline subtraction were normally distributed so the
random fluctuations could be reduced by coherent averaging; it was thereby possible to reliably detect a 2x1 mm
notch simulating a crack located one pipe diameter along the pipe from the transducer ring. The damage detection
performance at different locations along the pipe was assessed by analysing receiver operating characteristic (ROC)
curves generated by adding simulated defects to multiple experimental measurements without damage. At a fixed
standoff distance, the damage detection performance increases with the square root of the number of averaged signals,
and is also improved by averaging the signals received by transducers covering the main lobe of the reflection from
the defect. When the defect is located more than about one pipe circumference from the transducer ring, the optimal
performance is obtained by averaging across all the transducers in the ring, corresponding to monitoring the T(0,1) pipe
mode. Therefore, an SH0 mode monitoring system has great potential for crack monitoring applications, particularly for
welds in pipes.
ultrasonic techniques have good detection sensitivities but poor inspection coverage, requiring an impractical number
of transducers to monitor large areas. Low frequency guided waves are used for corrosion detection in pipelines,
but are insufficiently sensitive for many crack detection applications. The sensitivity can be improved by using higher
frequencies and by placing the receiving transducers closer to the defect. This study evaluates the monitoring
performance of an SH0 mode system at frequencies just below the high-order mode cut-off. Baseline subtraction
with temperature compensation was applied to experimental data generated by a ring of transducers on a 6-inch
diameter pipe. It was found that the residual signals after baseline subtraction were normally distributed so the
random fluctuations could be reduced by coherent averaging; it was thereby possible to reliably detect a 2x1 mm
notch simulating a crack located one pipe diameter along the pipe from the transducer ring. The damage detection
performance at different locations along the pipe was assessed by analysing receiver operating characteristic (ROC)
curves generated by adding simulated defects to multiple experimental measurements without damage. At a fixed
standoff distance, the damage detection performance increases with the square root of the number of averaged signals,
and is also improved by averaging the signals received by transducers covering the main lobe of the reflection from
the defect. When the defect is located more than about one pipe circumference from the transducer ring, the optimal
performance is obtained by averaging across all the transducers in the ring, corresponding to monitoring the T(0,1) pipe
mode. Therefore, an SH0 mode monitoring system has great potential for crack monitoring applications, particularly for
welds in pipes.
Date Issued
2020-09-01
Date Acceptance
2019-09-20
Citation
Structural Health Monitoring: an international journal, 2020, 19 (5), pp.1311-1322
ISSN
1475-9217
Publisher
SAGE Publications
Start Page
1311
End Page
1322
Journal / Book Title
Structural Health Monitoring: an international journal
Volume
19
Issue
5
Copyright Statement
© The Author(s) 2019. The final, definitive version of this paper has been published in Chua, C. A., & Cawley, P. (2020). Crack growth monitoring using fundamental shear horizontal guided waves. Structural Health Monitoring, 19(5), 1311–1322 by Sage Publications Ltd. All rights reserved. It is available at: https://doi.org/10.1177/1475921719882330
Sponsor
Engineering & Physical Science Research Council (EPSRC)
NDE Research Association Ltd
Identifier
https://journals.sagepub.com/doi/10.1177/1475921719882330
Grant Number
EP/L022125/1
RNCNDE3 Resarch 2018-20
Subjects
Science & Technology
Technology
Engineering, Multidisciplinary
Instruments & Instrumentation
Engineering
Guided waves
structural health monitoring
receiver operating characteristic
damage detection
cracks
OPTIMIZATION
REFLECTION
INSPECTION
Acoustics
09 Engineering
Publication Status
Published
Date Publish Online
2019-10-23