Electrical conductivity degradation of fatigued carbon black reinforced natural rubber composites: Effects of carbon nanotubes and strain amplitudes

The fatigue of rubber products is usually accompanied by undesirable transformation in their properties. The present work was dedicated to the investigation of consequences of fatigue loading on volume electric conductivity of natural rubber (NR) reinforced with 30 phr of fillers composed from vario...

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Main Authors: E. Harea, S. Datta, M. Stenicka, R. Stocek
Format: Article
Language:English
Published: Budapest University of Technology and Economics 2019-12-01
Series:eXPRESS Polymer Letters
Subjects:
Online Access:http://www.expresspolymlett.com/letolt.php?file=EPL-0010118&mi=cd
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author E. Harea
S. Datta
M. Stenicka
R. Stocek
author_facet E. Harea
S. Datta
M. Stenicka
R. Stocek
author_sort E. Harea
collection DOAJ
description The fatigue of rubber products is usually accompanied by undesirable transformation in their properties. The present work was dedicated to the investigation of consequences of fatigue loading on volume electric conductivity of natural rubber (NR) reinforced with 30 phr of fillers composed from various weight combinations of carbon nanotubes (CNTs) and carbon black (CB). Special attention was paid to study the influence of CNTs content on residual electric conductivity and a possible mechanism of fatigue driven rearrangement of hybrid filler network inside of rubber matrix was propounded forward. An increase in the CNTs content over the complete range of concentrations, enhanced the conductivity of fabricated samples up to two orders of magnitude in comparison to rubber compounds without CNTs. All the samples were subjected to harmonic sinusoidal loading at a frequency of 5 Hz up to 105 loading cycles at three different strains of 0.1, 0.25 and 0.5. Despite very little transformation in the polymer matrix, fatigue caused a progressive degradation of conductivity with an increase in applied strain. It was also found that with the addition and a subsequent increase in the concentration of CNTs, the undesirable reduction of conductivity was significantly arrested. This novel finding added another number to the list of the outstanding properties of CNTs.
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id doaj-art-ce9063bc1aed40bca782e15b66e9c324
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issn 1788-618X
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publisher Budapest University of Technology and Economics
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series eXPRESS Polymer Letters
spelling doaj-art-ce9063bc1aed40bca782e15b66e9c3242025-08-20T02:51:52ZengBudapest University of Technology and EconomicseXPRESS Polymer Letters1788-618X2019-12-0113121116112410.3144/expresspolymlett.2019.96Electrical conductivity degradation of fatigued carbon black reinforced natural rubber composites: Effects of carbon nanotubes and strain amplitudesE. HareaS. DattaM. StenickaR. StocekThe fatigue of rubber products is usually accompanied by undesirable transformation in their properties. The present work was dedicated to the investigation of consequences of fatigue loading on volume electric conductivity of natural rubber (NR) reinforced with 30 phr of fillers composed from various weight combinations of carbon nanotubes (CNTs) and carbon black (CB). Special attention was paid to study the influence of CNTs content on residual electric conductivity and a possible mechanism of fatigue driven rearrangement of hybrid filler network inside of rubber matrix was propounded forward. An increase in the CNTs content over the complete range of concentrations, enhanced the conductivity of fabricated samples up to two orders of magnitude in comparison to rubber compounds without CNTs. All the samples were subjected to harmonic sinusoidal loading at a frequency of 5 Hz up to 105 loading cycles at three different strains of 0.1, 0.25 and 0.5. Despite very little transformation in the polymer matrix, fatigue caused a progressive degradation of conductivity with an increase in applied strain. It was also found that with the addition and a subsequent increase in the concentration of CNTs, the undesirable reduction of conductivity was significantly arrested. This novel finding added another number to the list of the outstanding properties of CNTs.http://www.expresspolymlett.com/letolt.php?file=EPL-0010118&mi=cdRubberFatigueCarbon nanotubesElectrical propertiesHybrid fillers
spellingShingle E. Harea
S. Datta
M. Stenicka
R. Stocek
Electrical conductivity degradation of fatigued carbon black reinforced natural rubber composites: Effects of carbon nanotubes and strain amplitudes
eXPRESS Polymer Letters
Rubber
Fatigue
Carbon nanotubes
Electrical properties
Hybrid fillers
title Electrical conductivity degradation of fatigued carbon black reinforced natural rubber composites: Effects of carbon nanotubes and strain amplitudes
title_full Electrical conductivity degradation of fatigued carbon black reinforced natural rubber composites: Effects of carbon nanotubes and strain amplitudes
title_fullStr Electrical conductivity degradation of fatigued carbon black reinforced natural rubber composites: Effects of carbon nanotubes and strain amplitudes
title_full_unstemmed Electrical conductivity degradation of fatigued carbon black reinforced natural rubber composites: Effects of carbon nanotubes and strain amplitudes
title_short Electrical conductivity degradation of fatigued carbon black reinforced natural rubber composites: Effects of carbon nanotubes and strain amplitudes
title_sort electrical conductivity degradation of fatigued carbon black reinforced natural rubber composites effects of carbon nanotubes and strain amplitudes
topic Rubber
Fatigue
Carbon nanotubes
Electrical properties
Hybrid fillers
url http://www.expresspolymlett.com/letolt.php?file=EPL-0010118&mi=cd
work_keys_str_mv AT eharea electricalconductivitydegradationoffatiguedcarbonblackreinforcednaturalrubbercompositeseffectsofcarbonnanotubesandstrainamplitudes
AT sdatta electricalconductivitydegradationoffatiguedcarbonblackreinforcednaturalrubbercompositeseffectsofcarbonnanotubesandstrainamplitudes
AT mstenicka electricalconductivitydegradationoffatiguedcarbonblackreinforcednaturalrubbercompositeseffectsofcarbonnanotubesandstrainamplitudes
AT rstocek electricalconductivitydegradationoffatiguedcarbonblackreinforcednaturalrubbercompositeseffectsofcarbonnanotubesandstrainamplitudes