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Article

Novel Statistical Analysis Schemes for Frequency-Modulated Thermal Wave Imaging for Inspection of Ship Hull Materials

by
Ishant Singh
1,
Vanita Arora
2,
Prabhu Babu
3 and
Ravibabu Mulaveesala
1,*
1
InfraRed Imaging Laboratory (IRIL), Centre for Sensors, Instrumentation and Cyber Physical System Engineering (SeNSE), Indian Institute of Technology Delhi, Hauz Khas, New Delhi 110016, India
2
InfraRed Vision & Automation Pvt. Ltd., Sun City, Rupnagar 140001, India
3
Centre for Applied Research in Electronics (CARE), Indian Institute of Technology Delhi, Hauz Khas, New Delhi 110016, India
*
Author to whom correspondence should be addressed.
NDT 2024, 2(4), 445-455; https://doi.org/10.3390/ndt2040027
Submission received: 24 July 2024 / Revised: 2 October 2024 / Accepted: 11 October 2024 / Published: 15 October 2024
(This article belongs to the Special Issue Advances in Imaging-Based NDT Methods)

Abstract

In the field of thermal non-destructive testing and evaluation (TNDT&E), active thermography gained popularity due to its fast wide-area monitoring and remote inspection capability to assess materials without compromising their future usability. Among the various active thermographic methods, pulse compression-favorable frequency-modulated thermal wave imaging stands out for its enhanced detectability and depth resolution. In this study, an experimental investigation has been carried out on a hardened steel sample used in the ship building industry with a flat-bottom-hole-simulated defect using the frequency-modulated thermal wave imaging (FMTWI) technique. The defect detection capabilities of FMTWI have been investigated from various statistical post-processing approaches and compared by taking the signal-to-noise ratio (SNR) as a figure of merit. Among various adopted statistical post-processing techniques, pulse compression has been carried out using different methods, namely the offset removal with polynomial curve fitting and principal component analysis (PCA), which is an unsupervised learning approach for data reduction and offset removal with median centering for data standardization. The performance of these techniques was assessed through experimental investigations on hardened steel specimens used in ship building to provide valuable insights into their effectiveness in defect detection capabilities.
Keywords: non-destructive testing and evaluation; frequency-modulated thermal wave imaging; principal component analysis; pulse compression; principal component thermography non-destructive testing and evaluation; frequency-modulated thermal wave imaging; principal component analysis; pulse compression; principal component thermography

Share and Cite

MDPI and ACS Style

Singh, I.; Arora, V.; Babu, P.; Mulaveesala, R. Novel Statistical Analysis Schemes for Frequency-Modulated Thermal Wave Imaging for Inspection of Ship Hull Materials. NDT 2024, 2, 445-455. https://doi.org/10.3390/ndt2040027

AMA Style

Singh I, Arora V, Babu P, Mulaveesala R. Novel Statistical Analysis Schemes for Frequency-Modulated Thermal Wave Imaging for Inspection of Ship Hull Materials. NDT. 2024; 2(4):445-455. https://doi.org/10.3390/ndt2040027

Chicago/Turabian Style

Singh, Ishant, Vanita Arora, Prabhu Babu, and Ravibabu Mulaveesala. 2024. "Novel Statistical Analysis Schemes for Frequency-Modulated Thermal Wave Imaging for Inspection of Ship Hull Materials" NDT 2, no. 4: 445-455. https://doi.org/10.3390/ndt2040027

APA Style

Singh, I., Arora, V., Babu, P., & Mulaveesala, R. (2024). Novel Statistical Analysis Schemes for Frequency-Modulated Thermal Wave Imaging for Inspection of Ship Hull Materials. NDT, 2(4), 445-455. https://doi.org/10.3390/ndt2040027

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