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Thermal degradation kinetics study of polyvinyl chloride (PVC) sheath for new and aged cables

机译:新旧电缆聚氯乙烯护套的热降解动力学研究

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摘要

The thermal degradation dynamics of new and aged PVC sheaths was studied in detail. The results illustrated that compared to new PVC sheath, the onset decomposition of aged PVC sheath mainly happened at higher temperature with larger peak value of mass loss rate. Three model-free methods most commonly used were employed to estimate the activation energy values at different conversions. It was noted that the aged PVC sheath exhibited greater entire activation energy than new PVC sheath. Two thermal degradation regions were observed based on the activation energy variation with conversion. The threshold of conversion for two regions was 0.6 for new PVC sheath and 0.5 for aged PVC sheath. The possible reaction mechanism was predicted by generalized master-plots method. The reaction model corresponding to each region showed observed difference between new and aged PVC sheaths. The compensation effect was also used to calculate the related pre-exponential factor. The variation of thermal degradation behavior could be ascribed to the changes of chemical composition, molecular structure, composition proportion and various additives after thermal aging. Besides, the thermal degradation process was reconstructed by an ANN model and it indicated that the predicted data fitted well with the experimental data. (C) 2019 Elsevier Ltd. All rights reserved.
机译:详细研究了新旧PVC护套的热降解动力学。结果表明,与新型聚氯乙烯护套相比,老化聚氯乙烯护套的分解主要发生在高温下,质量损失率的峰值更大。最常用的三种无模型方法用于估算不同转化率下的活化能值。注意到老化的PVC护套比新的PVC护套展现出更大的整体活化能。基于活化能随转化率的变化,观察到两个热降解区域。对于新的PVC护套,两个区域的转换阈值为0.6;对于老化的PVC护套,转换阈值为0.5。通过广义主点图法预测了可能的反应机理。对应于每个区域的反应模型显示出新的和老化的PVC护套之间观察到的差异。补偿效果也用于计算相关的指数前因子。热老化后热降解行为的变化可归因于化学成分,分子结构,组成比例和各种添加剂的变化。此外,通过ANN模型对热降解过程进行了重建,表明预测数据与实验数据吻合良好。 (C)2019 Elsevier Ltd.保留所有权利。

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