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Effect of Clay Amounts on Morphology and Mechanical Performances in Multiscale PET Composites

机译:粘土量对多尺度PET复合材料的形态和机械性能的影响

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This work presents an investigation of the properties of poly(ethylene terephthalate)/glass fibres/nanoclay multiscale composites. The aim is to demonstrate the effect of adding various clay amounts on the morphology and mechanical performance of multiscale PET composites. Multiscale composites were prepared by adding 0.5, 1.0, 3.0, and 5.0 wt(percent) of Cloisite15A montmorillonite: Initially, a masterbatch of pure PET blended with 10 wt(percent) of Cloisite15A was obtained in a co-rotating twin screw extruder. The multiscale composites were then blended, via mechanical mixing, and injection moulded by adding the masterbatch to the glass fibre reinforced matrix. The morphological and mechanical characterizations of all compounds are discussed. X-ray diffraction (XRD) and transmission electron microscopy (TEM) revealed that the characteristic (001) peak of the nanocomposite obtained by extrusion (masterbatch) shifted to the lower angle region stating an intercalated structure. However, the subsequent injection moulding process changed the morphological structure of the multiscale nanocomposites reducing the basal distance mostly for small loadings of nanoclay. The addition of nanoclay to PET matrices increases the degree of crystallinity, the clay platelets possibly playing the role of nucleating agent, as revealed by DSC and FTIR. The time relaxation spectra broaden as seen by DMA, as the ratio of clay/polymer interfaces increases. The yield stress of composites with 0.5 and 1 wt(percent) of C15A content are enhanced. For more than 3percent of nanoclay, the yield stress decreases. The Young's modulus is increased when adding C15 nanoclay. Indeed, clay exfoliation was not attained, but the intercalated particle dispersion improved the stiffness properties of PET/glass fibres/nanoclay composites.
机译:这项工作提出聚(对苯二甲酸乙二醇酯)/玻璃纤维/纳米粘土多尺度复合材料的性能进行调查。其目的是为了证明加入在形态和多尺度PET复合材料的力学性能的各种粘土量的效果。多尺度复合材料通过加入Cloisite15A蒙脱石0.5,1.0,3.0和5.0重量(%)的制备:首先,纯PET的母料共混Cloisite15A的10重量(百分比)在同向旋转双螺杆挤出机而获得。然后,将多尺度复合材料混合,通过机械混合,和增强基体注入通过将所述母料与玻璃纤维模制而成。所有化合物的形态学和机械刻划进行了讨论。 X射线衍射(XRD)和透射电子显微镜(TEM)发现,通过挤出(母料)中获得的纳米复合材料的特性(001)峰偏移到低角度区域,说明插层结构。然而,随后的注射成型过程改变了的多尺度复合材料减少基底距离大多为纳米粘土小负荷的形态结构。加入纳米粘土的以PET矩阵增加结晶度,粘土片可能玩成核剂,通过DSC和FTIR所揭示的作用。时间松弛谱拓宽由DMA如可以看出,随着粘土/聚合物界面的比率增加。用的C15A含量0.5和1重量(%)的复合材料的屈服应力提高。对于除纳米粘土的3percent以上,屈服应力降低。加入C15纳米粘土时,杨氏模量增加。事实上,粘土剥离,无法得到,但插层颗粒分散体改进的PET /玻璃纤维/纳米粘土复合材料的刚度特性。

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