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Process Induced Morphology Development of Isotactic Polypropylene on the Basis of Molecular Stretch and Mechanical Work Evolutions

机译:基于分子拉伸和机械功演变的全同立构聚丙烯过程诱导形态学发展

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摘要

It is well known that under high shear rates polymers tend to solidify with formation of morphological elements oriented and aligned along the flow direction. On the other hand, stretched polymer chains may not have sufficient time to undergo the structuring steps, which give rise to fibrillar morphology. In the last decades, several authors have proposed a combined criterion based on both a critical shear rate and a critical mechanical work, which guaranties adequate time for molecular structuring. In this paper, the criterion, reformulated on the basis of critical values of both molecular stretch and mechanical work and adjusted to account for the unsteady character of the polymer processing operations, is applied to the analysis of a set of isotactic polypropylene injection molded samples obtained under very different thermal boundary conditions. The evolutions of molecular stretch and mechanical work are evaluated using process simulation. The results of the model reproduce the main characteristics of the morphology distribution detected on the cross sections of moldings, obtained under very different thermal boundary conditions, assuming that the critical work is a function of temperature.
机译:众所周知,在高剪切速率下,聚合物倾向于固化并形成沿流动方向取向和排列的形态元素。另一方面,拉伸的聚合物链可能没有足够的时间进行结构化步骤,这导致了原纤维形态。在过去的几十年中,几位作者提出了一个基于临界剪切速率和临界机械功的组合标准,该标准可确保有足够的时间进行分子结构化。在本文中,该标准根据分子拉伸和机械加工的临界值重新制定,并针对聚合物加工操作的不稳定特性进行了调整,该标准可用于分析获得的一组等规聚丙烯注塑样品在非常不同的热边界条件下。使用过程仿真评估分子拉伸和机械功的演变。该模型的结果再现了在非常不同的热边界条件下获得的,在模制件横截面上检测到的形态分布的主要特征,假设关键功是温度的函数。

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