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Dynamic Response and Molecular Chain Modifications Associated with Degradation during Mixing of Silica-Reinforced Natural Rubber Compounds

Mixing silica-reinforced rubber for tire tread compounds involves high shear forces and temperatures to obtain a sufficient degree of silanization. Natural Rubber (NR) is sensitive to mastication and chemical reactions, and thus, silica–NR mixing encounters both mechanical and thermal degradation. T...

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Autores principales: Kraibut, Ammarin, Saiwari, Sitisaiyidah, Kaewsakul, Wisut, Noordermeer, Jacques W. M., Sahakaro, Kannika, Dierkes, Wilma K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9823689/
https://www.ncbi.nlm.nih.gov/pubmed/36616514
http://dx.doi.org/10.3390/polym15010160
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author Kraibut, Ammarin
Saiwari, Sitisaiyidah
Kaewsakul, Wisut
Noordermeer, Jacques W. M.
Sahakaro, Kannika
Dierkes, Wilma K.
author_facet Kraibut, Ammarin
Saiwari, Sitisaiyidah
Kaewsakul, Wisut
Noordermeer, Jacques W. M.
Sahakaro, Kannika
Dierkes, Wilma K.
author_sort Kraibut, Ammarin
collection PubMed
description Mixing silica-reinforced rubber for tire tread compounds involves high shear forces and temperatures to obtain a sufficient degree of silanization. Natural Rubber (NR) is sensitive to mastication and chemical reactions, and thus, silica–NR mixing encounters both mechanical and thermal degradation. The present work investigates the degradation phenomena during the mixing of silica-reinforced NR compounds in-depth. The Mooney stress relaxation rates, the dynamic properties with frequency sweep, a novel characterization of branch formation on NR using Δδ values acc. Booij and van Gurp-Palmen plots, together, indicate two major competitive reactions taking place: chain scission or degradation and preliminary cross-linking or branch formation. For masticated pure NR and gum compounds, the viscous responses increase, and the changes in all parameters indicate the dominance of chain scission with increasing dump temperature. It causes molecular weight decrease, broader molecular weight distribution, and branched structures. Different behavior is observed for silica-filled NR compounds in which both physical and chemical cross-links are promoted by silanization and coupling reactions. At high dump temperatures above 150 °C, the results indicate a significant increase in branching due to preliminary cross-linking. These molecular chain modifications that cause network heterogeneity deteriorate the mechanical properties of resulting vulcanizates.
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spelling pubmed-98236892023-01-08 Dynamic Response and Molecular Chain Modifications Associated with Degradation during Mixing of Silica-Reinforced Natural Rubber Compounds Kraibut, Ammarin Saiwari, Sitisaiyidah Kaewsakul, Wisut Noordermeer, Jacques W. M. Sahakaro, Kannika Dierkes, Wilma K. Polymers (Basel) Article Mixing silica-reinforced rubber for tire tread compounds involves high shear forces and temperatures to obtain a sufficient degree of silanization. Natural Rubber (NR) is sensitive to mastication and chemical reactions, and thus, silica–NR mixing encounters both mechanical and thermal degradation. The present work investigates the degradation phenomena during the mixing of silica-reinforced NR compounds in-depth. The Mooney stress relaxation rates, the dynamic properties with frequency sweep, a novel characterization of branch formation on NR using Δδ values acc. Booij and van Gurp-Palmen plots, together, indicate two major competitive reactions taking place: chain scission or degradation and preliminary cross-linking or branch formation. For masticated pure NR and gum compounds, the viscous responses increase, and the changes in all parameters indicate the dominance of chain scission with increasing dump temperature. It causes molecular weight decrease, broader molecular weight distribution, and branched structures. Different behavior is observed for silica-filled NR compounds in which both physical and chemical cross-links are promoted by silanization and coupling reactions. At high dump temperatures above 150 °C, the results indicate a significant increase in branching due to preliminary cross-linking. These molecular chain modifications that cause network heterogeneity deteriorate the mechanical properties of resulting vulcanizates. MDPI 2022-12-29 /pmc/articles/PMC9823689/ /pubmed/36616514 http://dx.doi.org/10.3390/polym15010160 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kraibut, Ammarin
Saiwari, Sitisaiyidah
Kaewsakul, Wisut
Noordermeer, Jacques W. M.
Sahakaro, Kannika
Dierkes, Wilma K.
Dynamic Response and Molecular Chain Modifications Associated with Degradation during Mixing of Silica-Reinforced Natural Rubber Compounds
title Dynamic Response and Molecular Chain Modifications Associated with Degradation during Mixing of Silica-Reinforced Natural Rubber Compounds
title_full Dynamic Response and Molecular Chain Modifications Associated with Degradation during Mixing of Silica-Reinforced Natural Rubber Compounds
title_fullStr Dynamic Response and Molecular Chain Modifications Associated with Degradation during Mixing of Silica-Reinforced Natural Rubber Compounds
title_full_unstemmed Dynamic Response and Molecular Chain Modifications Associated with Degradation during Mixing of Silica-Reinforced Natural Rubber Compounds
title_short Dynamic Response and Molecular Chain Modifications Associated with Degradation during Mixing of Silica-Reinforced Natural Rubber Compounds
title_sort dynamic response and molecular chain modifications associated with degradation during mixing of silica-reinforced natural rubber compounds
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9823689/
https://www.ncbi.nlm.nih.gov/pubmed/36616514
http://dx.doi.org/10.3390/polym15010160
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