Application of rheology as a tool to estimate the mixing quality of elastomeric nanocomposites and comparing with small-angle X-ray scattering microstructural study

Shahrzad Mahdizadeh Farsangi, Hajir Kourki, Hojatollah Moradi Shahrbabaki
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引用次数: 1

Abstract

Finding a relation between microstructure and properties of nanocomposites is challenging for engineers to control properties of polymeric systems by controlling their microstructure or to estimate their microstructure parameters by studying their properties. Since rheological properties can be obtained in stress or strain modes, sweep of temperatures, sweep of frequencies, amplitudes of applied stress or strains sweep and over the time, creating a relationship between rheological properties and microstructure of nanocomposites has a higher practical freedom. Also, rheological properties are highly affected by mixing quality, which is defined microstructure parameters of systems, so rheology can be applied as a tool to estimate the mixing quality of polymeric systems. Therefore, the present study aims to present the structural model for the rheological behavior of nanocomposites were produced under different mixing conditions and establish the relationship between rheological properties and microstructure of these nanocomposites and evaluate the presented structure with Small-angle X-ray scattering data. Thus, elastomeric nanocomposites were produced at different mixing speeds and times. The results indicated at the lower mixing intensity the agglomerates of nanoparticles are first distributed in the rubber system by increasing the time and speed of mixing so at those mixing condition rheological properties decreased. Finally at the higher mixing intensity the aggregates of these particles start to break so the rheological properties increased. Based on the rheological properties, distributing of particles reduces the rheological properties of nanocomposites, while breaking aggregates increases the rheological properties.
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应用流变学方法评价弹性体纳米复合材料的混合质量,并与小角x射线散射微结构研究进行比较
如何通过控制聚合物体系的微观结构来控制其性能,或通过研究其性能来估计其微观结构参数,是研究纳米复合材料微观结构与性能之间关系的一个挑战。由于流变特性可以在应力或应变模式下获得,温度扫描、频率扫描、施加应力或应变振幅扫描和随时间的变化,因此在纳米复合材料的流变特性和微观结构之间建立关系具有更高的实践自由度。此外,混炼质量是聚合物体系的微观结构参数,它对聚合物的流变性能有很大的影响,因此流变性能可以作为一种评估聚合物体系混炼质量的工具。因此,本研究旨在建立不同混合条件下制备的纳米复合材料流变行为的结构模型,建立这些纳米复合材料流变性能与微观结构之间的关系,并用小角x射线散射数据评价所呈现的结构。因此,在不同的混合速度和时间下制备了弹性纳米复合材料。结果表明,在较低的混合强度下,随着混合时间和速度的增加,纳米颗粒的团聚体首先分布在橡胶体系中,在一定的混合条件下,纳米颗粒的流变性能下降。最后,在较高的混合强度下,这些颗粒的聚集体开始破裂,因此流变性能增加。从流变性能来看,颗粒的分布降低了纳米复合材料的流变性能,而聚集体的破碎则提高了纳米复合材料的流变性能。
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