Wave-Mode Configurable Ultrasonic Non-Destructive Evaluation System Using Optoacoustic Prism

We demonstrate a multi-mode ultrasonic non-destructive evaluation (NDE) system based on a hybrid transducer including an optoacoustic (OA) prism. In this system, the OA prism with a flexible curved transmitter is capable of not only generating acoustic signals with high OA conversion efficiency but...

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Main Authors: Muhammad Awais Abbasi, Hyoung Won Baac
Format: Article
Language:English
Published: IEEE 2022-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9777954/
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author Muhammad Awais Abbasi
Hyoung Won Baac
author_facet Muhammad Awais Abbasi
Hyoung Won Baac
author_sort Muhammad Awais Abbasi
collection DOAJ
description We demonstrate a multi-mode ultrasonic non-destructive evaluation (NDE) system based on a hybrid transducer including an optoacoustic (OA) prism. In this system, the OA prism with a flexible curved transmitter is capable of not only generating acoustic signals with high OA conversion efficiency but also covering a wide angular range to initiate various acoustic wave modes into a specimen whose interface is in contact with the OA prism. The latter angular manipulation provides great flexibility for NDE, which is uniquely enabled by developing and employing the curved OA transmitter coated on the prism. Using finite-element-based simulation, we validate acoustic signal generation and propagation inside an aluminum specimen. Then, excitation, propagation, and acquisition of shear and Rayleigh wave modes are confirmed experimentally. As feasibility demonstration, our hybrid transducer system, consisting of the OA prism and a piezoelectric receiver, is utilized for NDE of an aluminum specimen which includes air void discontinuity of 5-mm diameter. This is realized by multi-mode acoustic excitation from the OA prism with incident angles of 33°, 42°, 47°, and 60°. This exhibits detection accuracy error less than 2% as confirmed by comparing calculated and measured time-of-flight values. Such OA prism-based realization of all range of angular wave modes allows our system to be potentially useful for NDE over broad metallic materials as long as their sound speed is faster than that of the OA prism, without causing additional reverberation noise commonly observed in conventional piezoelectric counterparts.
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spelling doaj.art-06773deebaa941699546d578c4966f312022-12-22T03:23:21ZengIEEEIEEE Access2169-35362022-01-0110547205472910.1109/ACCESS.2022.31764509777954Wave-Mode Configurable Ultrasonic Non-Destructive Evaluation System Using Optoacoustic PrismMuhammad Awais Abbasi0https://orcid.org/0000-0002-1000-1563Hyoung Won Baac1https://orcid.org/0000-0001-9295-6162Department of Electrical and Computer Engineering, Sungkyunkwan University, Suwon, Republic of KoreaDepartment of Electrical and Computer Engineering, Sungkyunkwan University, Suwon, Republic of KoreaWe demonstrate a multi-mode ultrasonic non-destructive evaluation (NDE) system based on a hybrid transducer including an optoacoustic (OA) prism. In this system, the OA prism with a flexible curved transmitter is capable of not only generating acoustic signals with high OA conversion efficiency but also covering a wide angular range to initiate various acoustic wave modes into a specimen whose interface is in contact with the OA prism. The latter angular manipulation provides great flexibility for NDE, which is uniquely enabled by developing and employing the curved OA transmitter coated on the prism. Using finite-element-based simulation, we validate acoustic signal generation and propagation inside an aluminum specimen. Then, excitation, propagation, and acquisition of shear and Rayleigh wave modes are confirmed experimentally. As feasibility demonstration, our hybrid transducer system, consisting of the OA prism and a piezoelectric receiver, is utilized for NDE of an aluminum specimen which includes air void discontinuity of 5-mm diameter. This is realized by multi-mode acoustic excitation from the OA prism with incident angles of 33°, 42°, 47°, and 60°. This exhibits detection accuracy error less than 2% as confirmed by comparing calculated and measured time-of-flight values. Such OA prism-based realization of all range of angular wave modes allows our system to be potentially useful for NDE over broad metallic materials as long as their sound speed is faster than that of the OA prism, without causing additional reverberation noise commonly observed in conventional piezoelectric counterparts.https://ieeexplore.ieee.org/document/9777954/Optoacoustic prismnon-destructive evaluationacoustic signal analysisultrasound transducershear waveRayleigh wave
spellingShingle Muhammad Awais Abbasi
Hyoung Won Baac
Wave-Mode Configurable Ultrasonic Non-Destructive Evaluation System Using Optoacoustic Prism
IEEE Access
Optoacoustic prism
non-destructive evaluation
acoustic signal analysis
ultrasound transducer
shear wave
Rayleigh wave
title Wave-Mode Configurable Ultrasonic Non-Destructive Evaluation System Using Optoacoustic Prism
title_full Wave-Mode Configurable Ultrasonic Non-Destructive Evaluation System Using Optoacoustic Prism
title_fullStr Wave-Mode Configurable Ultrasonic Non-Destructive Evaluation System Using Optoacoustic Prism
title_full_unstemmed Wave-Mode Configurable Ultrasonic Non-Destructive Evaluation System Using Optoacoustic Prism
title_short Wave-Mode Configurable Ultrasonic Non-Destructive Evaluation System Using Optoacoustic Prism
title_sort wave mode configurable ultrasonic non destructive evaluation system using optoacoustic prism
topic Optoacoustic prism
non-destructive evaluation
acoustic signal analysis
ultrasound transducer
shear wave
Rayleigh wave
url https://ieeexplore.ieee.org/document/9777954/
work_keys_str_mv AT muhammadawaisabbasi wavemodeconfigurableultrasonicnondestructiveevaluationsystemusingoptoacousticprism
AT hyoungwonbaac wavemodeconfigurableultrasonicnondestructiveevaluationsystemusingoptoacousticprism