首页> 外文期刊>International Polymer Processing: The Journal of the Polymer Processing Society >Effect of Blending Protocol on the Rheological Properties and Morphology of HDPE/LLDPE Blend-based Nanocomposites
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Effect of Blending Protocol on the Rheological Properties and Morphology of HDPE/LLDPE Blend-based Nanocomposites

机译:混合方案对HDPE / LLDPE共混纳米复合材料流变性能和形态的影响

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摘要

Nanocomposites based on high density polyethylene (HDPE)/ linear low density polyethylene (LLDPE) blend were prepared by melt compounding in a torque rheometer using an organo-clay (montmorillonite) as nano-filler and maleic anhydride-grafted linear low density polyethylene (LLDPE-g-MA) as compatibilizer. The effects of five blending protocols on micro-structure, crystallinity and rheological properties of the prepared samples were examined. The steady state rheological properties showed that the addition of nanoclay to the HDPE/ LLDPE blend increased its shear viscosity at low shear rates changing the behavior of the HDPE/LLDPE matrix to a more pronounced shear thinning behavior. The blending sequence (LLDPE/LLDPE-g-MA/20A)/HDPE (where LLDPE and LLDPE-g-MA were first mixed with organoclay and then this system was later blended with HDPE) showed a lower slope of the log n versus log y curve and these results can be an indicative that the interactions between the matrix and the organoclay are stronger. The organoclay interlayer spacing and the crystallinity of the polymer domains were also influenced by the blending sequence. The crystallinity was calculated through the mathematical deconvolution of the peaks observed in the WAXD profiles. Overall, the crystallization of HDPE in the blends was hardly influenced by the presence of LLDPE. The blending sequence (LLDPE/LLDPE-g-MA/20A)/HDPE showed lower cristallinity when compared to others blending sequences. On the other hand, it was observed an increase in the organoclay interlayer spacing of this nanocomposite because the intercalation and/or exfoliation process occurs preferentially in the amorphous phase.
机译:通过使用有机粘土(蒙脱土)作为纳米填料和顺丁烯二酸酐接枝的线性低密度聚乙烯(LLDPE)在扭矩流变仪中熔融配合,制备了基于高密度聚乙烯(HDPE)/线性低密度聚乙烯(LLDPE)共混物的纳米复合材料。 -g-MA)作为增容剂。检查了五种混合方案对所制备样品的微观结构,结晶度和流变性的影响。稳态流变性能​​表明,向低密度聚乙烯/低密度聚乙烯混合物中添加纳米粘土可在低剪切速率下增加其剪切粘度,从而将高密度聚乙烯/低密度聚乙烯基质的行为改变为更明显的剪切稀化行为。混合顺序(LLDPE / LLDPE-g-MA / 20A)/ HDPE(其中先将LLDPE和LLDPE-g-MA与有机粘土混合,然后再将该系统与HDPE混合),log n与log的斜率较低曲线,这些结果可以表明基质与有机粘土之间的相互作用更强。混合顺序也影响有机粘土的层间间距和聚合物域的结晶度。通过在WAXD曲线中观察到的峰的数学解卷积来计算结晶度。总体而言,共混物中HDPE的结晶几乎不受LLDPE的影响。与其他混合序列相比,混合序列(LLDPE / LLDPE-g-MA / 20A)/ HDPE显示出较低的结晶度。另一方面,观察到该纳米复合材料的有机粘土层间间距增加,因为插层和/或剥离过程优先发生在非晶相中。

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