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Long-chain branched polypropylene: crystallization under high pressure and polymorphic composition

机译:长链支化聚丙烯:高压下的结晶和多态性组合物

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摘要

High-pressure crystallization and resulting polymorphic composition of long-chain branched polypropylene (LCB-PP) were studied and compared with common linear isotactic polypropylene (PP). Commercially available LCB-PP and PP with similar melt flow indexes were crystallized under several high pressures (20, 40, 80, 120 and 160 MPa) at constant cooling rate 5 degrees C min(-1). Structure of crystallized samples was evaluated via wide-angle X-ray scattering, differential scanning calorimetry and scanning electron microscopy. It was shown that under low pressure LCB-PP crystallizes at higher crystallization temperature than PP due to its higher nucleating density. The opposite situation is observed at high pressures (120 and 160 MPa): crystallization temperature of PP exceeds that of LCB-PP as a negative effect of branching is pronounced. Polymorphic analysis proved that LCB-PP tends to crystallize into orthorhombic gamma-form. This crystalline form becomes to be dominant at 40 MPa, and LCB-PP samples crystallized at 120 and 160 MPa contain solely gamma-form. On the other hand, no pure gamma-form sample was prepared from PP in this study, although positive effect of pressure on its formation is observed. Thermodynamic stability of LCB-PP crystalline structure is systematically lower compared to PP. With pronounced crystallization pressure, the melting peak broadens and finally splits, indicating the presence of dominant amount of gamma-form in LCB-PP. In comparison with PP, crystallites in LCB-PP structure are considerably smaller due to lower crystal growth rate and higher nucleating density.
机译:研究了长链支化聚丙烯(LCB-PP)的高压结晶及其多晶组成,并与普通线性等规聚丙烯(PP)进行了比较。市售LCB-PP和具有类似熔体流动指数的PP在几种高压(20、40、80、120和160 MPa)下以5°C min(-1)的恒定冷却速率结晶。结晶样品的结构通过广角X射线散射、差示扫描量热法和扫描电子显微镜进行评估。结果表明,由于LCB-PP的成核密度较高,所以在低压下,LCB-PP的结晶温度高于PP。在高压(120和160 MPa)下观察到相反的情况:PP的结晶温度超过LCB-PP,因为支化的负面影响显著。多晶型分析表明,LCB-PP倾向于结晶成正交γ晶型。这种结晶形式在40 MPa时占主导地位,在120和160 MPa下结晶的LCB-PP样品仅含有伽马形式。另一方面,本研究中没有从PP中制备纯γ形式的样品,尽管观察到压力对其形成的积极影响。与PP相比,LCB-PP晶体结构的热力学稳定性较低。在明显的结晶压力下,熔融峰变宽并最终分裂,表明LCB-PP中存在占主导地位的γ形式。与PP相比,LCB-PP结构中的微晶因较低的晶体生长速率和较高的成核密度而显著更小。

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