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Development of an Accurate and Robust Air-Coupled Ultrasonic Time-of-Flight Measurement Technique

Ultrasonic time-of-flight (ToF) measurements enable the non-destructive characterization of material parameters as well as the reconstruction of scatterers inside a specimen. The time-consuming and potentially damaging procedure of applying a liquid couplant between specimen and transducer can be av...

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Autores principales: Bühling, Benjamin, Küttenbaum, Stefan, Maack, Stefan, Strangfeld, Christoph
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8953486/
https://www.ncbi.nlm.nih.gov/pubmed/35336306
http://dx.doi.org/10.3390/s22062135
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author Bühling, Benjamin
Küttenbaum, Stefan
Maack, Stefan
Strangfeld, Christoph
author_facet Bühling, Benjamin
Küttenbaum, Stefan
Maack, Stefan
Strangfeld, Christoph
author_sort Bühling, Benjamin
collection PubMed
description Ultrasonic time-of-flight (ToF) measurements enable the non-destructive characterization of material parameters as well as the reconstruction of scatterers inside a specimen. The time-consuming and potentially damaging procedure of applying a liquid couplant between specimen and transducer can be avoided by using air-coupled ultrasound. However, to obtain accurate ToF results, the waveform and travel time of the acoustic signal through the air, which are influenced by the ambient conditions, need to be considered. The placement of microphones as signal receivers is restricted to locations where they do not affect the sound field. This study presents a novel method for in-air ranging and ToF determination that is non-invasive and robust to changing ambient conditions or waveform variations. The in-air travel time was determined by utilizing the azimuthal directivity of a laser Doppler vibrometer operated in refracto-vibrometry (RV) mode. The time of entry of the acoustic signal was determined using the autocorrelation of the RV signal. The same signal was further used as a reference for determining the ToF through the specimen in transmission mode via cross-correlation. The derived signal processing procedure was verified in experiments on a polyamide specimen. Here, a ranging accuracy of [Formula: see text] mm and a transmission ToF accuracy of [Formula: see text] [Formula: see text] s were achieved. Thus, the proposed method enables fast and accurate non-invasive ToF measurements that do not require knowledge about transducer characteristics or ambient conditions.
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spelling pubmed-89534862022-03-26 Development of an Accurate and Robust Air-Coupled Ultrasonic Time-of-Flight Measurement Technique Bühling, Benjamin Küttenbaum, Stefan Maack, Stefan Strangfeld, Christoph Sensors (Basel) Article Ultrasonic time-of-flight (ToF) measurements enable the non-destructive characterization of material parameters as well as the reconstruction of scatterers inside a specimen. The time-consuming and potentially damaging procedure of applying a liquid couplant between specimen and transducer can be avoided by using air-coupled ultrasound. However, to obtain accurate ToF results, the waveform and travel time of the acoustic signal through the air, which are influenced by the ambient conditions, need to be considered. The placement of microphones as signal receivers is restricted to locations where they do not affect the sound field. This study presents a novel method for in-air ranging and ToF determination that is non-invasive and robust to changing ambient conditions or waveform variations. The in-air travel time was determined by utilizing the azimuthal directivity of a laser Doppler vibrometer operated in refracto-vibrometry (RV) mode. The time of entry of the acoustic signal was determined using the autocorrelation of the RV signal. The same signal was further used as a reference for determining the ToF through the specimen in transmission mode via cross-correlation. The derived signal processing procedure was verified in experiments on a polyamide specimen. Here, a ranging accuracy of [Formula: see text] mm and a transmission ToF accuracy of [Formula: see text] [Formula: see text] s were achieved. Thus, the proposed method enables fast and accurate non-invasive ToF measurements that do not require knowledge about transducer characteristics or ambient conditions. MDPI 2022-03-09 /pmc/articles/PMC8953486/ /pubmed/35336306 http://dx.doi.org/10.3390/s22062135 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Bühling, Benjamin
Küttenbaum, Stefan
Maack, Stefan
Strangfeld, Christoph
Development of an Accurate and Robust Air-Coupled Ultrasonic Time-of-Flight Measurement Technique
title Development of an Accurate and Robust Air-Coupled Ultrasonic Time-of-Flight Measurement Technique
title_full Development of an Accurate and Robust Air-Coupled Ultrasonic Time-of-Flight Measurement Technique
title_fullStr Development of an Accurate and Robust Air-Coupled Ultrasonic Time-of-Flight Measurement Technique
title_full_unstemmed Development of an Accurate and Robust Air-Coupled Ultrasonic Time-of-Flight Measurement Technique
title_short Development of an Accurate and Robust Air-Coupled Ultrasonic Time-of-Flight Measurement Technique
title_sort development of an accurate and robust air-coupled ultrasonic time-of-flight measurement technique
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8953486/
https://www.ncbi.nlm.nih.gov/pubmed/35336306
http://dx.doi.org/10.3390/s22062135
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