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首页> 外文期刊>Polymer Degradation and Stability >Physico-chemical aspects of polyethylene processing in an open mixer. Part 29: Experimental kinetics and mechanisms of γ-lactone formation
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Physico-chemical aspects of polyethylene processing in an open mixer. Part 29: Experimental kinetics and mechanisms of γ-lactone formation

机译:在开放式混合机中聚乙烯加工的物理化学方面。第29部分:γ-内酯形成的实验动力学和机理

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The experimental kinetics for γ-lactone formation shows more complexity than that for acids. Nonetheless, it can be concluded to the existence of a constant rate of formation from the beginning of the experiments with polyethylene melts. There is an additional term contributing to γ-lactone formation in the initial stages that is cubic in processing time. In the advanced stages of processing, in the high temperature range (170—200 ℃), the concentration of γ-lactones increases linearly with the processing time.rnThere are many mechanisms susceptible to give γ-lactones on polyethylene melt processing. Some of them are based on decomposition of intermediates formed directly on chain propagation. This is so for the α,γ-keto-hydroperoxides in 4-position to hydroxyl groups. Since decomposition of these intermediates is very fast, the reaction might account for a constant rate of γ-lactone formation from the beginning of polyethylene processing. Decomposition of the α,δ-keto-hydroperoxides formed on intramolecular reactions on chain propagation is not so fast as that of the α,γ-keto-hydroperoxides. Nonetheless, it might account for part of the delayed formation of γ-lactones. The same is valid for the mechanisms based on peroxidation of aldehydes and γ-hydroxy trans-vinylene groups that involve intermediates that are formed on polyethylene peroxidation. They might be important for explaining the cubic term as well as γ-lactone formation in the advanced stages of polyethylene processing.
机译:γ-内酯形成的实验动力学比酸具有更高的复杂性。尽管如此,从聚乙烯熔体实验开始就可以得出恒定的形成速率的结论。在加工初期,还有一个额外的术语可以促进γ-内酯的形成。在加工的后期,在高温范围(170-200℃)中,γ-内酯的浓度随加工时间的增加而线性增加。其中一些是基于链增长直接形成的中间体的分解。对于在4-位羟基上的α,γ-酮-氢过氧化物来说是这样。由于这些中间体的分解非常快,因此从聚乙烯加工开始,该反应可能会导致γ-内酯形成速率恒定。分子内反应在链增长时形成的α,δ-酮氢过氧化物的分解不如α,γ-酮氢过氧化物的分解快。尽管如此,它可能是造成γ-内酯延迟形成的部分原因。对于基于醛和γ-羟基反亚乙烯基的过氧化的机理也是有效的,这些机理涉及在聚乙烯过氧化作用下形成的中间体。它们可能对解释聚乙烯加工后期阶段的立方术语以及γ-内酯形成很重要。

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