首页> 外文期刊>Journal of Polymer Science, Part B. Polymer Physics >Morphology Development during isothemral crystallization. II. Isotactic and Syndiotactic Polypropylene Blends
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Morphology Development during isothemral crystallization. II. Isotactic and Syndiotactic Polypropylene Blends

机译:等角结晶过程中的形态发展。二。等规和间规聚丙烯共混物

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Morphology development during isothermal crystallization in equal molecular weight isotactic polypropylene (iPP), syndiotactic polypropylene (sPP), and iPP/sPP blends was studied with time-resolved simultaneous small-angle X-ray scattering (XAXS) and wide-angle X-ray diffraction (WAXD) with synchrotron radiation. The sPP melting point is 15-20 deg C below that of the iPP component, and sPP multiple melting is not affected by blending for 50-100 wt % sPP compositions. SAXS and WAXD (at 115 and 137.5 deg C) show that sPP crystallizes more slowly than iPP. The sPP long spacing is larger than that of iPP at both crystallization temperatures, exhibits a broader distribution, and changes to a greater extent during crystallization. Differential scanning calorimetry (DSC) cooling and SAXS/WAXD measurements show iPP crystallizing first and nearly to completion before sPP in a 50:50 iPP/sPP blend. At 115 deg C, iPP crystals nucleate sPP in a 50:50 blend and modify the sPP lamellar spacing. The nucleation does not overcome the large difference in the iPP and sPP rates at 137.5 deg C. Before sPP crystallization in a 50:50 blend (115 deg C), the iPP long spacing is not affected by molten sPP. The iPP long spacing is slightly expanded by molten sPP, and the WAXD induction time is delayed at 137.5 deg C. The observed iPP long spacing in the presence of molten sPP is consistent with previously reported results for iPP/atactic polypropylene (aPP) blends of similar molecular weight. Quantitative differences between the two types of blends are consistent with previously reported thermodynamic rankings.
机译:利用时间分辨的同时小角度X射线散射(XAXS)和广角X射线研究了等分子量等规聚丙烯(iPP),间规聚丙烯(sPP)和iPP / sPP共混物在等温结晶过程中的形貌发展同步辐射的衍射(WAXD)。 sPP的熔点比iPP组分的熔点低15-20℃,并且对于50-100wt%的sPP组合物共混不会影响sPP的多次熔融。 SAXS和WAXD(在115和137.5摄氏度下)显示sPP的结晶速度比iPP慢。在两个结晶温度下,sPP的长间距均大于iPP的间距,呈现出较宽的分布,并且在结晶过程中变化幅度更大。差示扫描量热法(DSC)冷却和SAXS / WAXD测量显示,在50:50 iPP / sPP混合物中sPP之前,iPP首先结晶并且几乎完成。在115摄氏度下,iPP晶体以50:50的比例使sPP成核,并改变了sPP的层间距。成核不能克服137.5摄氏度时iPP和sPP速率的巨大差异。在以50:50的混合物(115摄氏度)结晶sPP之前,iPP的长间距不受熔融sPP的影响。熔融sPP会稍微扩大iPP长间距,并且WAXD诱导时间会延迟到137.5摄氏度。在熔融sPP存在的情况下观察到的iPP长间距与先前报道的iPP /无规聚丙烯(aPP)混合物分子量相似。两种类型的混合物之间的定量差异与先前报道的热力学排名一致。

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