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Molecular weight distribution modeling in low-density polyethylene polymerization; impact of scission mechanisms in the case of CSTR

机译:低密度聚乙烯聚合中的分子量分布模型;断裂机制对CSTR的影响

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摘要

The role of scission reactions in low-density polyethylene (IdPE) polymerization has recently been the subject of various modeling studies. The linear scission approximation leading to a uniform fragment length distribution, seems to describe the scission mechanism well. For linear scission the predicted bimodal molecular weight distribution (MWD) in the case of a CSTR agrees with that found by size exclusion chromatography (SEC). However, scission of branched polymers does not follow the linear scission model, since it leads to predominately long and short fragments. Therefore, we systematically compared the linear scission model with the newly proposed 'topological scission' model. We found a pronounced difference in MWD between linear scission, yielding a bimodality and topological scission, leading to a long tail in MWD. In addition we examined mechanical scission that could occur in stirred autoclave reactors due to mechanical action. Mechanical scission also turns out to generate bimodality in MWD. The molecular architecture of IdPE is also discussed in connection with scission kinetics and the topological scission model. (C) 2003 Elsevier Ltd. All rights reserved. [References: 23]
机译:断裂反应在低密度聚乙烯(IdPE)聚合中的作用最近成为各种建模研究的主题。线性分裂近似导致均匀的片段长度分布,似乎很好地描述了分裂机制。对于线性断裂,在CSTR的情况下,预测的双峰分子量分布(MWD)与通过尺寸排阻色谱法(SEC)得出的结果一致。但是,支链聚合物的断裂并不能遵循线性断裂模型,因为它会导致主要的长片段和短片段。因此,我们系统地将线性分裂模型与新提出的“拓扑分裂”模型进行了比较。我们发现线性分裂之间的MWD存在明显差异,产生双峰态和拓扑分裂,从而导致MWD中的长尾巴。另外,我们研究了由于机械作用在搅拌高压釜反应器中可能发生的机械断裂。机械分裂也导致MWD产生双峰性。还结合断裂动力学和拓扑断裂模型讨论了IdPE的分子结构。 (C)2003 Elsevier Ltd.保留所有权利。 [参考:23]

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