首页> 外文期刊>Journal of Polymer Science, Part B. Polymer Physics >The beta-crystalline form of isotactic polypropylene in blends of isotactic polypropylene and polyamide-6/clay nanocomposites
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The beta-crystalline form of isotactic polypropylene in blends of isotactic polypropylene and polyamide-6/clay nanocomposites

机译:等规聚丙烯和聚酰胺-6 /粘土纳米复合材料的混合物中,等规聚丙烯的β-晶型

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Blends of isotactic polypropylene and polyamide-6/clay nanocomposites (iPP/NPA6) were prepared with an internal batch mixer. A high content of the beta-crystalline form of isotactic polypropylene (beta-iPP) was observed in the injection-molded samples of the iPP/NPA6 blends, whereas the content of beta-iPP in the iPP/PA6 blends and the iPP/clay composite was low and similar to that of neat iPP. Quiescent melt crystallization was studied by means of wide-angle X-ray diffraction, differential scanning calorimetry, and polarized optical microscopy. We found that the significant beta-iPP is not formed during quiescent melt crystallization regardless of whether the sample used was the iPP/NPA6 blend or an NPA6 fiber/iPP composite. Further characterization of the injection-molded iPP/NPA6 revealed a shear-induced skin-core distribution of beta-iPP and the formation of beta-iPP in the iPP/NPA6 blends is related to the shear flow field during cavity-filling. In the presence of clay, the deformation ability of the NPA6 domain is decreased, as evidenced by rheological and morphological studies. It is reasonable that the enhanced relative shear, caused by low deformability of the NPA6 domain in the iPP matrix, is responsible for beta-iPP formation in the iPP/NPA6 blends. (C) 2004 Wiley Periodicals, Inc.
机译:等规聚丙烯和聚酰胺-6 /粘土纳米复合材料(iPP / NPA6)的共混物用内部间歇混合器制备。在iPP / NPA6共混物的注塑样品中观察到高含量的全同立构聚丙烯的β晶型(β-iPP),而在iPP / PA6共混物和iPP /粘土中β-iPP的含量较高复合材料含量低,与纯iPP相似。通过广角X射线衍射,差示扫描量热法和偏振光学显微镜研究了静态熔体结晶。我们发现,无论使用的样品是iPP / NPA6共混物还是NPA6纤维/ iPP复合材料,在静态熔融结晶过程中都不会形成明显的β-iPP。注塑成型的iPP / NPA6的进一步表征表明,剪切诱导的β-iPP的皮芯分布和iPP / NPA6共混物中β-iPP的形成与空腔填充过程中的剪切流场有关。流变学和形态学研究证明,在粘土存在下,NPA6结构域的变形能力降低。合理的是,由iPP基质中NPA6域的低可变形性引起的相对剪切增强是iPP / NPA6共混物中β-iPP形成的原因。 (C)2004年Wiley Periodicals,Inc.

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