Influence of the cure level on the monomeric friction coefficient of natural rubber vulcanizates

An experimental investigation was performed in order to correlate the changes observed in dynamic modulus and loss tangent of vulcanized natural rubber with its network structure. A set of samples of natural rubber vulcanized at 413K and 433K for different times was prepared to achieve different net...

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Autores principales: Marzocca, A.J., Steren, C.A., Raimondo, R.B., Cerveny, S.
Formato: JOUR
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NMR
Acceso en línea:http://hdl.handle.net/20.500.12110/paper_09598103_v53_n6_p646_Marzocca
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spelling todo:paper_09598103_v53_n6_p646_Marzocca2023-10-03T15:53:12Z Influence of the cure level on the monomeric friction coefficient of natural rubber vulcanizates Marzocca, A.J. Steren, C.A. Raimondo, R.B. Cerveny, S. Loss tangent Monomeri friction coefficient Natural rubber NMR Correlation methods Crosslinking Curing Elastic moduli Friction Oscillations Vulcanization Dynamic modulus Loss tangent Network structure Oscillating frequencies Rubber friction An experimental investigation was performed in order to correlate the changes observed in dynamic modulus and loss tangent of vulcanized natural rubber with its network structure. A set of samples of natural rubber vulcanized at 413K and 433K for different times was prepared to achieve different network structures in the compound material. These networks were analyzed by means of solid-state NMR techniques in order to distinguish the sulfur bridges formed during vulcanization. The crosslink density was calculated using swelling techniques for each cure condition. Dynamic mechanical tests were performed using a free decay pendulum in the range of temperatures between 213 K and 373 K and oscillating frequencies between 0.1s-1 and 20s-1. Loss tangent data were analyzed within the frame of the KMF model and the variation of the monomeric friction coefficient with the crosslink density was obtained. This variation is a consequence of the network structure formed in the different stages of the curing process. © 2004 Society of Chemical Industry. JOUR info:eu-repo/semantics/openAccess http://creativecommons.org/licenses/by/2.5/ar http://hdl.handle.net/20.500.12110/paper_09598103_v53_n6_p646_Marzocca
institution Universidad de Buenos Aires
institution_str I-28
repository_str R-134
collection Biblioteca Digital - Facultad de Ciencias Exactas y Naturales (UBA)
topic Loss tangent
Monomeri friction coefficient
Natural rubber
NMR
Correlation methods
Crosslinking
Curing
Elastic moduli
Friction
Oscillations
Vulcanization
Dynamic modulus
Loss tangent
Network structure
Oscillating frequencies
Rubber
friction
spellingShingle Loss tangent
Monomeri friction coefficient
Natural rubber
NMR
Correlation methods
Crosslinking
Curing
Elastic moduli
Friction
Oscillations
Vulcanization
Dynamic modulus
Loss tangent
Network structure
Oscillating frequencies
Rubber
friction
Marzocca, A.J.
Steren, C.A.
Raimondo, R.B.
Cerveny, S.
Influence of the cure level on the monomeric friction coefficient of natural rubber vulcanizates
topic_facet Loss tangent
Monomeri friction coefficient
Natural rubber
NMR
Correlation methods
Crosslinking
Curing
Elastic moduli
Friction
Oscillations
Vulcanization
Dynamic modulus
Loss tangent
Network structure
Oscillating frequencies
Rubber
friction
description An experimental investigation was performed in order to correlate the changes observed in dynamic modulus and loss tangent of vulcanized natural rubber with its network structure. A set of samples of natural rubber vulcanized at 413K and 433K for different times was prepared to achieve different network structures in the compound material. These networks were analyzed by means of solid-state NMR techniques in order to distinguish the sulfur bridges formed during vulcanization. The crosslink density was calculated using swelling techniques for each cure condition. Dynamic mechanical tests were performed using a free decay pendulum in the range of temperatures between 213 K and 373 K and oscillating frequencies between 0.1s-1 and 20s-1. Loss tangent data were analyzed within the frame of the KMF model and the variation of the monomeric friction coefficient with the crosslink density was obtained. This variation is a consequence of the network structure formed in the different stages of the curing process. © 2004 Society of Chemical Industry.
format JOUR
author Marzocca, A.J.
Steren, C.A.
Raimondo, R.B.
Cerveny, S.
author_facet Marzocca, A.J.
Steren, C.A.
Raimondo, R.B.
Cerveny, S.
author_sort Marzocca, A.J.
title Influence of the cure level on the monomeric friction coefficient of natural rubber vulcanizates
title_short Influence of the cure level on the monomeric friction coefficient of natural rubber vulcanizates
title_full Influence of the cure level on the monomeric friction coefficient of natural rubber vulcanizates
title_fullStr Influence of the cure level on the monomeric friction coefficient of natural rubber vulcanizates
title_full_unstemmed Influence of the cure level on the monomeric friction coefficient of natural rubber vulcanizates
title_sort influence of the cure level on the monomeric friction coefficient of natural rubber vulcanizates
url http://hdl.handle.net/20.500.12110/paper_09598103_v53_n6_p646_Marzocca
work_keys_str_mv AT marzoccaaj influenceofthecurelevelonthemonomericfrictioncoefficientofnaturalrubbervulcanizates
AT sterenca influenceofthecurelevelonthemonomericfrictioncoefficientofnaturalrubbervulcanizates
AT raimondorb influenceofthecurelevelonthemonomericfrictioncoefficientofnaturalrubbervulcanizates
AT cervenys influenceofthecurelevelonthemonomericfrictioncoefficientofnaturalrubbervulcanizates
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