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Reaction model describing antioxidant depletion in polyethylene-clay nanocomposites under thermal aging

机译:描述热老化条件下聚乙烯黏土纳米复合材料中抗氧化剂消耗的反应模型

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Antioxidants are typically added to polyethylene to extend its durability, and recently clay nanoparticles have been blended into polyethylene to improve mechanical properties. However, the clay nanoparticles also accelerate the rate of antioxidant depletion in polyethylene. This paper uses a mathematical model to describe the underlying mechanisms of antioxidant (hindered-phenol) depletion and to predict experimentally-measured antioxidant profiles in polyethylene-clay nanocomposites. The mathematical model uses a reaction kinetic scheme that includes free radical initiation and propagation reactions, antioxidant stabilization reactions and free radical termination reactions. In the model, alkyl free radicals oxidize rapidly. The role of antioxidants is to stabilize the oxidized free radicals to hydroperoxides, and interrupt propagation reactions. However, in nanocomposites, continuous depletion of antioxidant is caused by the clay acting as a catalyst to decompose hydroperoxides and regenerate alkyl free radicals. This cyclic hydroperoxide generation and decomposition leads to much faster antioxidant depletion in polyethylene nanocomposites. Phenoxyl radicals of antioxidants generated by stabilization reactions contribute to terminate polymeric free radicals and limit their accumulation. Predictions of antioxidant depletion are compared to experimental results for accelerated aging of polyethylene and nanocomposite samples.
机译:通常将抗氧化剂添加到聚乙烯中以延长其耐久性,并且最近将粘土纳米颗粒共混到聚乙烯中以改善机械性能。但是,粘土纳米颗粒还加快了聚乙烯中抗氧化剂的消耗速度。本文使用数学模型描述了抗氧化剂(受阻酚)消耗的潜在机理,并预测了聚乙烯粘土纳米复合材料中通过实验测量的抗氧化剂特性。该数学模型使用的反应动力学方案包括自由基引发和扩散反应,抗氧化剂稳定化反应和自由基终止反应。在该模型中,烷基自由基迅速氧化。抗氧化剂的作用是将氧化的自由基稳定为氢过氧化物,并中断传播反应。然而,在纳米复合材料中,抗氧化剂的连续消耗是由粘土充当催化剂来分解氢过氧化物并再生烷基自由基引起的。这种环状氢过氧化物的产生和分解导致聚乙烯纳米复合材料中抗氧化剂的消耗更快。通过稳定化反应产生的抗氧化剂的苯氧基自由基有助于终止聚合自由基并限制其积累。将抗氧化剂耗竭的预测与加速聚乙烯和纳米复合材料样品老化的实验结果进行了比较。

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