Comparative study of deterioration of composite due to ice formation using strain, electromechanical impedance and guided waves

Glass fibre reinforced plastic (GFRP) composites are finding increasing application in aerospace structures. The monitoring of these structures is not only necessary but also mandatory by the safety codes. The present state of the art allows isolation of damage and the quantification of damage is th...

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Main Authors: Soman Rohan, Malinowski Pawel, Ostachowicz Wieslaw
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201818801001
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spelling doaj-8087b2f108b24b178e4e7aaa69fb90d02021-02-02T03:21:59ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-011880100110.1051/matecconf/201818801001matecconf_iceaf-v2018_01001Comparative study of deterioration of composite due to ice formation using strain, electromechanical impedance and guided wavesSoman RohanMalinowski PawelOstachowicz WieslawGlass fibre reinforced plastic (GFRP) composites are finding increasing application in aerospace structures. The monitoring of these structures is not only necessary but also mandatory by the safety codes. The present state of the art allows isolation of damage and the quantification of damage is the next challenge. The quantification may allow for better maintenance scheduling and as a result lower downtime for airplanes, which makes it significant in the aerospace discipline. It is known that the moisture absorption in the composites affects its mechanical properties. The moisture can interact with the composite sample in the gaseous, liquid or solid phase. The mechanism for deterioration of the composite due to the moisture depends on the phase in which the interaction occurs. The paper thus investigates the interaction of water absorbed by the sample in the solid phase. The GFRP sample is exposed to low temperatures after the ingress of the moisture. The sample is studied using three distinct damage detection methods namely, Electromechanical Impedance technique (EMI), Guided waves method (GW) and NA based technique based on measured strains. The aim of the research is to compare the performance of the three methods for the assessment of the deterioration of the composite samples due to ice. The EMI, GW and strain based method have been shown to be sensitive to moisture induced deterioration. In addition to the detection of deterioration, the use of measured strains provides an intuitive way for the quantification of the moisture induced deterioration in the sample.https://doi.org/10.1051/matecconf/201818801001
collection DOAJ
language English
format Article
sources DOAJ
author Soman Rohan
Malinowski Pawel
Ostachowicz Wieslaw
spellingShingle Soman Rohan
Malinowski Pawel
Ostachowicz Wieslaw
Comparative study of deterioration of composite due to ice formation using strain, electromechanical impedance and guided waves
MATEC Web of Conferences
author_facet Soman Rohan
Malinowski Pawel
Ostachowicz Wieslaw
author_sort Soman Rohan
title Comparative study of deterioration of composite due to ice formation using strain, electromechanical impedance and guided waves
title_short Comparative study of deterioration of composite due to ice formation using strain, electromechanical impedance and guided waves
title_full Comparative study of deterioration of composite due to ice formation using strain, electromechanical impedance and guided waves
title_fullStr Comparative study of deterioration of composite due to ice formation using strain, electromechanical impedance and guided waves
title_full_unstemmed Comparative study of deterioration of composite due to ice formation using strain, electromechanical impedance and guided waves
title_sort comparative study of deterioration of composite due to ice formation using strain, electromechanical impedance and guided waves
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2018-01-01
description Glass fibre reinforced plastic (GFRP) composites are finding increasing application in aerospace structures. The monitoring of these structures is not only necessary but also mandatory by the safety codes. The present state of the art allows isolation of damage and the quantification of damage is the next challenge. The quantification may allow for better maintenance scheduling and as a result lower downtime for airplanes, which makes it significant in the aerospace discipline. It is known that the moisture absorption in the composites affects its mechanical properties. The moisture can interact with the composite sample in the gaseous, liquid or solid phase. The mechanism for deterioration of the composite due to the moisture depends on the phase in which the interaction occurs. The paper thus investigates the interaction of water absorbed by the sample in the solid phase. The GFRP sample is exposed to low temperatures after the ingress of the moisture. The sample is studied using three distinct damage detection methods namely, Electromechanical Impedance technique (EMI), Guided waves method (GW) and NA based technique based on measured strains. The aim of the research is to compare the performance of the three methods for the assessment of the deterioration of the composite samples due to ice. The EMI, GW and strain based method have been shown to be sensitive to moisture induced deterioration. In addition to the detection of deterioration, the use of measured strains provides an intuitive way for the quantification of the moisture induced deterioration in the sample.
url https://doi.org/10.1051/matecconf/201818801001
work_keys_str_mv AT somanrohan comparativestudyofdeteriorationofcompositeduetoiceformationusingstrainelectromechanicalimpedanceandguidedwaves
AT malinowskipawel comparativestudyofdeteriorationofcompositeduetoiceformationusingstrainelectromechanicalimpedanceandguidedwaves
AT ostachowiczwieslaw comparativestudyofdeteriorationofcompositeduetoiceformationusingstrainelectromechanicalimpedanceandguidedwaves
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