Non-Contact Thickness Measurement Using Deep Learning-Assisted 3×3 Fiber-Coupler Laser-Ultrasonic Interferometry

Non-contact ultrasonic thickness measurement is important for industrial metrology, particularly for metallic components where surface temperature, motion, geometry, or contamination can limit conventional contact probes. In this study, we present a fully non-contact thickness measurement system for aluminum plates integrating laser-ultrasound excitation, 3×3 interferometric detection, and deep learning-based phase demodulation. Broadband ultrasonic waves were generated using a pulsed 532 nm laser in the ablation regime, while rear-surface displacement was detected using a 1550 nm fiber-optic interferometric probe. Two phase-shifted outputs from a 3×3 coupler were processed by a neural interferometric demodulator (NID), which directly reconstructed continuous optical phase without separate quadrature reconstruction, arctangent phase extraction, or phase unwrapping during inference. PZT-modulated measurements at 10, 15, 20, and 25 kPa provided additional validation against conventional 3×3 standard ellipse fitting (3×3-SEF), including phase excursions exceeding 2π. The NID reduced the phase RMSE from 0.048 to 0.071 rad to 0.029–0.041 rad and the processing time from 481 ± 22 μs to 295 ± 30 μs per sequence. For thickness measurement, the reconstructed phase was converted into out-of-plane displacement, and acoustic time-of-flight (TOF) features were extracted. For 2, 6, and 10 mm aluminum plates, the estimated thicknesses were 1.911 ± 0.024 mm, 6.102 ± 0.070 mm, and 10.516 mm with a partial standard uncertainty of 0.127 mm, respectively. These results demonstrate accurate and efficient deep learning-assisted phase demodulation for fully non-contact laser-ultrasonic thickness gauging.

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Publication Details

Journal
Photonics
Published
2026-09-15
DOI
https://doi.org/10.3390/photonics13090864
Primary Topic
Ultrasonics and Acoustic Wave Propagation
Type
article
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Non-Contact Thickness Measurement Using Deep Learning-Assisted 3×3 Fiber-Coupler Laser-Ultrasonic Interferometry

Younggue Kim, Byeong Ha Lee, M.M. Awais, Minseo Cho
Photonics
Ultrasonics and Acoustic Wave Propagation
article

Non-Contact Thickness Measurement Using Deep Learning-Assisted 3×3 Fiber-Coupler Laser-Ultrasonic Interferometry

Younggue Kim, Byeong Ha Lee, M.M. Awais, Minseo Cho
article en

Abstract

Non-contact ultrasonic thickness measurement is important for industrial metrology, particularly for metallic components where surface temperature, motion, geometry, or contamination can limit conventional contact probes. In this study, we present a fully non-contact thickness measurement system for aluminum plates integrating laser-ultrasound excitation, 3×3 interferometric detection, and deep learning-based phase demodulation. Broadband ultrasonic waves were generated using a pulsed 532 nm laser in the ablation regime, while rear-surface displacement was detected using a 1550 nm fiber-optic interferometric probe. Two phase-shifted outputs from a 3×3 coupler were processed by a neural interferometric demodulator (NID), which directly reconstructed continuous optical phase without separate quadrature reconstruction, arctangent phase extraction, or phase unwrapping during inference. PZT-modulated measurements at 10, 15, 20, and 25 kPa provided additional validation against conventional 3×3 standard ellipse fitting (3×3-SEF), including phase excursions exceeding 2π. The NID reduced the phase RMSE from 0.048 to 0.071 rad to 0.029–0.041 rad and the processing time from 481 ± 22 μs to 295 ± 30 μs per sequence. For thickness measurement, the reconstructed phase was converted into out-of-plane displacement, and acoustic time-of-flight (TOF) features were extracted. For 2, 6, and 10 mm aluminum plates, the estimated thicknesses were 1.911 ± 0.024 mm, 6.102 ± 0.070 mm, and 10.516 mm with a partial standard uncertainty of 0.127 mm, respectively. These results demonstrate accurate and efficient deep learning-assisted phase demodulation for fully non-contact laser-ultrasonic thickness gauging.

PhotonicsVol. 13(9)
Gwangju Institute of Science and Technology (KR), Korea Photonics Technology Institute (KR), The English Linguistics Society of Korea (KR)
Openalex Percentile: Top 19%
Ultrasonics and Acoustic Wave Propagation
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