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Quantitative Visualization of Buried Defects in GFRP via Microwave Reflectometry

Glass fiber-reinforced polymer (GFRP) is widely used in engineering fields involving aerospace, energy, transportation, etc. If internal buried defects occur due to hostile environments during fabrication and practical service, the structural integrity and safety of GFRP structures would be severely...

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Autores principales: Wang, Ruonan, Fang, Yang, Gao, Qianxiang, Li, Yong, Yang, Xihan, Chen, Zhenmao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10383363/
https://www.ncbi.nlm.nih.gov/pubmed/37514923
http://dx.doi.org/10.3390/s23146629
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author Wang, Ruonan
Fang, Yang
Gao, Qianxiang
Li, Yong
Yang, Xihan
Chen, Zhenmao
author_facet Wang, Ruonan
Fang, Yang
Gao, Qianxiang
Li, Yong
Yang, Xihan
Chen, Zhenmao
author_sort Wang, Ruonan
collection PubMed
description Glass fiber-reinforced polymer (GFRP) is widely used in engineering fields involving aerospace, energy, transportation, etc. If internal buried defects occur due to hostile environments during fabrication and practical service, the structural integrity and safety of GFRP structures would be severely undermined. Therefore, it is indispensable to carry out effective quantitative nondestructive testing (NDT) of internal defects buried within GFRP structures. Along with the development of composite materials, microwave NDT is promising in non-intrusive inspection of defects in GFRPs. In this paper, quantitative screening of the subsurface impact damage and air void in a unidirectional GFRP via microwave reflectometry was intensively investigated. The influence of the microwave polarization direction with respect to the GFRP fiber direction on the reflection coefficient was investigated by using the equivalent relative permittivity calculated with theoretical analysis. Following this, a microwave NDT system was built up for further investigation regarding the imaging and quantitative evaluation of buried defects in GFRPs. A direct-wave suppression method based on singular-value decomposition was proposed to obtain high-quality defect images. The defect in-plane area was subsequently assessed via a proposed defect-edge identification method. The simulation and experimental results revealed that (1) the testing sensitivity to buried defects was the highest when the electric-field polarization direction is parallel to the GFRP fiber direction; and (2) the averaged evaluation accuracy regarding the in-plane area of the buried defect reached approximately 90% by applying the microwave reflectometry together with the proposed processing methods.
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spelling pubmed-103833632023-07-30 Quantitative Visualization of Buried Defects in GFRP via Microwave Reflectometry Wang, Ruonan Fang, Yang Gao, Qianxiang Li, Yong Yang, Xihan Chen, Zhenmao Sensors (Basel) Article Glass fiber-reinforced polymer (GFRP) is widely used in engineering fields involving aerospace, energy, transportation, etc. If internal buried defects occur due to hostile environments during fabrication and practical service, the structural integrity and safety of GFRP structures would be severely undermined. Therefore, it is indispensable to carry out effective quantitative nondestructive testing (NDT) of internal defects buried within GFRP structures. Along with the development of composite materials, microwave NDT is promising in non-intrusive inspection of defects in GFRPs. In this paper, quantitative screening of the subsurface impact damage and air void in a unidirectional GFRP via microwave reflectometry was intensively investigated. The influence of the microwave polarization direction with respect to the GFRP fiber direction on the reflection coefficient was investigated by using the equivalent relative permittivity calculated with theoretical analysis. Following this, a microwave NDT system was built up for further investigation regarding the imaging and quantitative evaluation of buried defects in GFRPs. A direct-wave suppression method based on singular-value decomposition was proposed to obtain high-quality defect images. The defect in-plane area was subsequently assessed via a proposed defect-edge identification method. The simulation and experimental results revealed that (1) the testing sensitivity to buried defects was the highest when the electric-field polarization direction is parallel to the GFRP fiber direction; and (2) the averaged evaluation accuracy regarding the in-plane area of the buried defect reached approximately 90% by applying the microwave reflectometry together with the proposed processing methods. MDPI 2023-07-24 /pmc/articles/PMC10383363/ /pubmed/37514923 http://dx.doi.org/10.3390/s23146629 Text en © 2023 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
Wang, Ruonan
Fang, Yang
Gao, Qianxiang
Li, Yong
Yang, Xihan
Chen, Zhenmao
Quantitative Visualization of Buried Defects in GFRP via Microwave Reflectometry
title Quantitative Visualization of Buried Defects in GFRP via Microwave Reflectometry
title_full Quantitative Visualization of Buried Defects in GFRP via Microwave Reflectometry
title_fullStr Quantitative Visualization of Buried Defects in GFRP via Microwave Reflectometry
title_full_unstemmed Quantitative Visualization of Buried Defects in GFRP via Microwave Reflectometry
title_short Quantitative Visualization of Buried Defects in GFRP via Microwave Reflectometry
title_sort quantitative visualization of buried defects in gfrp via microwave reflectometry
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10383363/
https://www.ncbi.nlm.nih.gov/pubmed/37514923
http://dx.doi.org/10.3390/s23146629
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