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首页> 外文期刊>Rubber Chemistry and Technology >CORRELATION OF VULCANIZATION AND VISCOELASTIC PROPERTIESOF NANOCOMPOSITES BASED ON NATURAL RUBBER ANDDIFFERENT NANOFILLERS, WITH MOLECULAR ANDSUPRAMOLECULAR STRUCTURE
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CORRELATION OF VULCANIZATION AND VISCOELASTIC PROPERTIESOF NANOCOMPOSITES BASED ON NATURAL RUBBER ANDDIFFERENT NANOFILLERS, WITH MOLECULAR ANDSUPRAMOLECULAR STRUCTURE

机译:基于天然橡胶和不同纳米填料,分子和超分子结构的纳米复合材料的硫化与粘弹性的相关性

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摘要

Elastomer nanocomposites reinforced with low volume fraction of nanofillers, such as nanoclays and carbon nanofibers, have long been known to possess significantly improved mechanical, thermal, dynamic mechanical, flame retardant, and barrier properties. The present work attempts to evaluate the effect of nanofillers (like modified and unmodified montmorillonite, sepiolite, carbon nanofiber, and carbon black) and their amount on vulcanization, as well as dynamic and rheological properties in the prevulcanization and postvulcanization stages. Upon using organomodified nanoclay, optimum cure time was reduced and cure rate index increased; whereas, in comparison, carbon nanofiber resulted in a slower cure. The influence of loading of some representative nanofillers on natural rubber was studied through qualitative description of critical dynamic viscoelastic parameters, which indicated the formation of supramolecular structure even at low volume fraction. The nanocomposite vulcanizates showed solidlike rheological behavior and upon implementation of dispersion techniques the activation energy of flow was reduced by around 60%. The knowledge of cure and rheological properties of the compounds, which evolves from the structure formation, can be utilized for assessing process optimization, cost reduction, and performance of the nanocomposites.
机译:长期以来,已知用低体积分数的纳米填料(例如纳米粘土和碳纳米纤维)增强的弹性体纳米复合材料具有显着改善的机械,热,动态机械,阻燃和阻隔性能。本工作试图评估纳米填料(如改性和未改性的蒙脱土,海泡石,碳纳米纤维和炭黑)及其用量对硫化的影响,以及硫化前和硫化后阶段的动态和流变性能。使用有机改性的纳米粘土后,最佳固化时间减少,固化速率指数增加;相比之下,碳纳米纤维的固化速度较慢。通过定性描述关键的动态粘弹性参数,研究了一些代表性的纳米填料的填充量对天然橡胶的影响,这表明即使在低体积分数下也能形成超分子结构。纳米复合硫化橡胶表现出类似固体的流变行为,实施分散技术后,流动的活化能降低了约60%。从结构形成发展而来的化合物的固化和流变特性知识可用于评估工艺优化,成本降低和纳米复合材料的性能。

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