Sensing strain and damage in polyurethane/MWCNT nano-composite foams using electrical measurements

This work deals with the damage identification in polymeric foams through the monitoring of the electrical resistance of the system. To assess this idea electrically conductive rigid Poly-Urethane (PUR) foams at various densities were prepared. Multi-Wall Carbon Nanotubes (MWCNT) were dispersed in t...

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Main Authors: A. Baltopoulos, N. Athanasopoulos, I. Fotiou, A. Vavouliotis, V. Kostopoulos
Format: Article
Language:English
Published: Budapest University of Technology 2013-01-01
Series:eXPRESS Polymer Letters
Subjects:
Online Access:http://www.expresspolymlett.com/letolt.php?file=EPL-0003728&mi=cd
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spelling doaj-f2a1ead99a094027a3d368adf628f7b02020-11-24T21:01:30ZengBudapest University of Technology eXPRESS Polymer Letters1788-618X2013-01-0171405410.3144/expresspolymlett.2013.4Sensing strain and damage in polyurethane/MWCNT nano-composite foams using electrical measurementsA. BaltopoulosN. AthanasopoulosI. FotiouA. VavouliotisV. KostopoulosThis work deals with the damage identification in polymeric foams through the monitoring of the electrical resistance of the system. To assess this idea electrically conductive rigid Poly-Urethane (PUR) foams at various densities were prepared. Multi-Wall Carbon Nanotubes (MWCNT) were dispersed in the host polymer at various concentrations through high shear mixing to provide electrical conductivity to the system. The PUR/MWCNT foams exhibited varying electrical conductivity on a wide range of densities and nano-filler contents. The prepared foams were subject to compression tests. Electrical resistance was recorded online during the tests to monitor the change of the bulk property of the materials. A structural-electrical cross-property relation was exhibited. The distinctive phases of foam compression were successfully identified from the electrical resistance profile recorded during the tests. A characteristic master curve of the change of electrical resistivity with respect to load and damage is proposed and analyzed. It was shown that the found electrical resistance profile is a characteristic of all the MWCNT contents and depends on density and conductivity. MWCNT content contributes mainly to the sensitivity of electrical sensing in the initial stage of compression. Later compression stages are dominated by foam microstructural damage which mask any effect of CNT dispersion. Micro-structural observations were employed to verify the experimental findings and curves.http://www.expresspolymlett.com/letolt.php?file=EPL-0003728&mi=cdSmart polymersNano-composite foamsElectrical conductivityDamage mechanism sensing
collection DOAJ
language English
format Article
sources DOAJ
author A. Baltopoulos
N. Athanasopoulos
I. Fotiou
A. Vavouliotis
V. Kostopoulos
spellingShingle A. Baltopoulos
N. Athanasopoulos
I. Fotiou
A. Vavouliotis
V. Kostopoulos
Sensing strain and damage in polyurethane/MWCNT nano-composite foams using electrical measurements
eXPRESS Polymer Letters
Smart polymers
Nano-composite foams
Electrical conductivity
Damage mechanism sensing
author_facet A. Baltopoulos
N. Athanasopoulos
I. Fotiou
A. Vavouliotis
V. Kostopoulos
author_sort A. Baltopoulos
title Sensing strain and damage in polyurethane/MWCNT nano-composite foams using electrical measurements
title_short Sensing strain and damage in polyurethane/MWCNT nano-composite foams using electrical measurements
title_full Sensing strain and damage in polyurethane/MWCNT nano-composite foams using electrical measurements
title_fullStr Sensing strain and damage in polyurethane/MWCNT nano-composite foams using electrical measurements
title_full_unstemmed Sensing strain and damage in polyurethane/MWCNT nano-composite foams using electrical measurements
title_sort sensing strain and damage in polyurethane/mwcnt nano-composite foams using electrical measurements
publisher Budapest University of Technology
series eXPRESS Polymer Letters
issn 1788-618X
publishDate 2013-01-01
description This work deals with the damage identification in polymeric foams through the monitoring of the electrical resistance of the system. To assess this idea electrically conductive rigid Poly-Urethane (PUR) foams at various densities were prepared. Multi-Wall Carbon Nanotubes (MWCNT) were dispersed in the host polymer at various concentrations through high shear mixing to provide electrical conductivity to the system. The PUR/MWCNT foams exhibited varying electrical conductivity on a wide range of densities and nano-filler contents. The prepared foams were subject to compression tests. Electrical resistance was recorded online during the tests to monitor the change of the bulk property of the materials. A structural-electrical cross-property relation was exhibited. The distinctive phases of foam compression were successfully identified from the electrical resistance profile recorded during the tests. A characteristic master curve of the change of electrical resistivity with respect to load and damage is proposed and analyzed. It was shown that the found electrical resistance profile is a characteristic of all the MWCNT contents and depends on density and conductivity. MWCNT content contributes mainly to the sensitivity of electrical sensing in the initial stage of compression. Later compression stages are dominated by foam microstructural damage which mask any effect of CNT dispersion. Micro-structural observations were employed to verify the experimental findings and curves.
topic Smart polymers
Nano-composite foams
Electrical conductivity
Damage mechanism sensing
url http://www.expresspolymlett.com/letolt.php?file=EPL-0003728&mi=cd
work_keys_str_mv AT abaltopoulos sensingstrainanddamageinpolyurethanemwcntnanocompositefoamsusingelectricalmeasurements
AT nathanasopoulos sensingstrainanddamageinpolyurethanemwcntnanocompositefoamsusingelectricalmeasurements
AT ifotiou sensingstrainanddamageinpolyurethanemwcntnanocompositefoamsusingelectricalmeasurements
AT avavouliotis sensingstrainanddamageinpolyurethanemwcntnanocompositefoamsusingelectricalmeasurements
AT vkostopoulos sensingstrainanddamageinpolyurethanemwcntnanocompositefoamsusingelectricalmeasurements
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