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Effects of Fumed Silica and Draw Ratio on Nanocomposite Polypropylene Fibers

机译:气相法二氧化硅和拉伸比对纳米复合聚丙烯纤维的影响

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摘要

Hydrophylic fumed silica AR974 was tested as a potential nanofiller for the production of composite isotactic polypropylene filaments/fibers (containing 0.25–2 vol % of nanoparticles) via melt compounding and subsequent hot drawing. The objectives of this study were as follows: (i) to investigate the effects of the composition and the processing conditions on the microstructure and the thermal and mechanical properties of the produced fibers; (ii) to separate the effects of silica addition from those produced by fiber drawing; and (iii) to interpret the changes in the matrix molecular mobility (produced by silica and/or drawing). Scanning electron microscopy (SEM) evidenced a good dispersion of nanoparticles at fractions up to 0.5 vol % of the nanofiller. X-ray diffraction (XRD) analyses revealed the increase in crystallinity after drawing of both neat polypropylene (PP) and produced nanocomposite fibers. Consequently, tensile modulus and stress at break of the fibers were enhanced. Drawn fibers containing 0.25–0.5 vol % of nanofiller showed also a remarkable increase in the creep resistance. Loss modulus of drawn fibers showed a pronounced α-relaxation peak at about 65 °C; the higher the draw ratio, the higher the peak intensity. Thermal and mechanical properties of composite fibers were improved due to the combined effects of nanofiller reinforcement and fiber orientation produced during hot drawing. Both fumed silica and draw ratio were significantly effective on tensile modulus and tenacity of nanocomposite fibers up to 0.5 vol % of AR974.
机译:亲水性气相二氧化硅AR974经过测试可作为潜在的纳米填料,可通过熔融混炼和随后的热拉伸生产等规聚丙烯复合长丝/纤维(包含0.25-2%(体积)纳米颗粒)。这项研究的目的如下:(i)研究组成和加工条件对所生产纤维的微观结构以及热和机械性能的影响; (ii)将二氧化硅添加的效果与纤维拉伸产生的效果分开; (iii)解释基质分子迁移率的变化(由二氧化硅和/或绘图产生)。扫描电子显微镜(SEM)显示出纳米颗粒具有良好的分散性,其比例高达纳米填料的0.5体积%。 X射线衍射(XRD)分析显示,纯聚丙烯(PP)和生产的纳米复合纤维均被拉伸后,结晶度增加。因此,提高了纤维的拉伸模量和断裂应力。含有0.25-0.5%(体积)纳米填料的拉伸纤维也显示出抗蠕变性的显着提高。拉伸纤维的损耗模量在约65°C时表现出明显的α松弛峰。拉伸比越高,峰强度越高。复合纤维的热和机械性能由于纳米填料增强和热拉伸过程中产生的纤维取向的综合作用而得到改善。气相二氧化硅和拉伸比均对纳米复合纤维的拉伸模量和韧度均具有显着效果,最高可达AR974的0.5%(体积)。

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