Szczegóły publikacji

Opis bibliograficzny

Damage detection in composite materials using hyperspectral imaging / Jan DŁUGOSZ, Phong Ba DAO, Wiesław J. STASZEWSKI, Tadeusz UHL // W: European Workshop on Structural Health Monitoring : EWSHM 2022 : [10th European Workshop on Structural Health Monitoring : Palermo, Italy, 4-7 July 2022], Vol. 2 / eds. Piervincenzo Rizzo, Alberto Milazzo. — Cham : Springer Nature Switzerland, cop. 2023. — (Lecture Notes in Civil Engineering ; ISSN 2366-2557 ; vol. 254). — ISBN: 978-3-031-07257-4; e-ISBN: 978-3-031-07258-1. — S. 463–473. — Bibliogr., Abstr. — Publikacja dostępna online od: 2022-06-16


Autorzy (4)


Słowa kluczowe

damage detectionhyperspectral imagingfibre reinforced plastic

Dane bibliometryczne

ID BaDAP140858
Data dodania do BaDAP2022-07-01
DOI10.1007/978-3-031-07258-1_48
Rok publikacji2023
Typ publikacjimateriały konferencyjne (aut.)
Otwarty dostęptak
WydawcaSpringer
Czasopismo/seriaLecture Notes in Civil Engineering

Abstract

Vision based techniques are successfully applied in for Structural Health Monitoring (SHM). Between them one can distinguish thermography, video-based methods and hyperspectral imaging method. Hyperspectral Imaging (HSI) is a method of obtaining an array of two-dimensional images over a wide range of wavelengths in the electromagnetic spectrum. HSI has found its applications in the fields of geographic remote sensing, food quality inspection, vegetation monitoring and medicine. One of the areas in which HSI usage is still developing is Structural Health Monitoring. There is a big potential of the HSI application because during hyperspectral imaging we can detect changes in physical and chemical properties of materials under the test. The aim of the study was to develop a technique for damage detection in glass fibre reinforced polymer composites, which is relatively difficult to achieve with other optical methods. The hyperspectral images for healthy and damaged composite samples are compared. For detection of damages, two approaches were investigated; a target detection algorithm using spectral data as the detection criterion, and an algorithm based on cointegration analysis. The strengths and weaknesses of both approaches are compared, and their applicability for SHM is assessed.

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