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Comparing Long-Chain Branching Mechanisms for Ethylene Polymerization with Metallocenes and Other Single-Site Catalysts: What Simulated Microstructures Can Teach Us

机译:将乙烯聚合的长链支化机制与茂金属和其他单次催化剂进行比较:模拟微观结构可以教导我们

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Three different long-chain branch (LCB) formation mechanisms for ethylene polymerization with metallocenes in solution polymerization semi-batch and continuous stirred-tank reactors are modeled to predict the microstructure of the resulting polymer. The three mechanisms are terminal branching, C-H bond activation, and intramolecular random incorporation. Selected polymerization parameters are varied to observe how each mechanism affects polymer microstructure. Increasing the ethylene concentration during semi-batch polymerization reduces the LCB frequency of polymers made with the terminal branching and intramolecular mechanisms, but has no effect on those made with the C-H bond activation mechanism, which disagrees with most previous data published in the literature. The intramolecular mechanism predicts that LCB frequencies hardly depend on polymerization time or ethylene conversion, which also disagrees with the published experimental data for these systems. For continuous polymerization reactors, experimental data relating polydispersity to LCB frequency can be well described with the terminal branching mechanism, but both C-H bond activation and intramolecular models fail to describe this experimental relationship. Therefore, detailed simulations confirm that the terminal branching mechanism is indeed the most likely mechanism for LCB formation when ethylene is polymerized with single-site coordination catalysts such as metallocenes in solution polymerization reactors.
机译:用溶液聚合半批料和连续搅拌罐反应器中的乙烯聚合的三种不同的长链分支(LCB)形成机制,用于预测所得聚合物的微观结构。三种机制是末端分支,C-H键活化和分子内随机掺入。各种各样的聚合参数改变,观察各种机制如何影响聚合物微观结构。在半批量聚合过程中增加乙烯浓度降低了用末端支化和分子内机制制成的聚合物的LCB频率,但对用C-H键活化机制制备的聚合物的LCB频率没有影响,其中不同意文献中发表的最先前的数据。分子内机制预测LCB频率几乎不依赖于聚合时间或乙烯转化率,这也不同意这些系统的已发表的实验数据。对于连续聚合反应器,通过末端分支机构可以很好地描述与LCB频率的多分散性有关的实验数据,但是C-H键活化和分子内模型都没有描述这种实验关系。因此,详细的模拟确认当乙烯与溶液聚合反应器中的单位配位催化剂如茂金属聚合时,终端分支机制确实是LCB形成的最可能机制。

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