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Binary mixture pyrolysis of polypropylene and polystyrene: A modeling and experimental study

机译:聚丙烯和聚苯乙烯的二元混合物热解:建模和实验研究

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The binary degradation of polystyrene (PS) and polypropylene (PP) was modeled at the mechanistic level by combining the individual component models developed in previous modeling work [T.M. Kruse, O.S. Woo, H.-W. Wong, S.S. Khan, L.J. Broadbelt, Macromolecules 35 (2002) 7830; T.M. Kruse, H.-W. Wong, L.J. Broadbelt, Macromolecules 36 (2003) 9594] and adding interactions between PS- and PP-derived species. The full binary model developed for the pyrolysis of PS/PP mixtures consisted of over 37,000 reactions and tracked 277 species. Within the binary model, interactions between polymeric species of different polymer types were not allowed since PS and PP are immiscible. However, a fraction of low molecular weight radicals (LMWR) of each polymer type was allowed to diffuse into the other polymer type. This was the only adjustable parameter in the model. Based on experimental data for a 50/50 wt% PS/PP mixture at 380℃, we found that allowing 0.037% of the LMWR derived from PS to diffuse into PP captured the enhancement of nearly a factor of four in the PP degradation rate that was observed experimentally at these conditions. To increase the enhancement in the PP degradation rate, solid-state shear pulverization (SSSP) and changes in the PS/PP weight ratio were used to manipulate the interfacial area between PS and PP during binary pyrolysis (no premixing was performed during the conventional binary experiments). Using SSSP to blend PS and PP resulted in a 25% increase in the enhancement in the PP degradation rate compared to no premixing. In order to model this enhancement, the fraction of low molecular weight PS radicals that could diffuse into PP was increased to 0.10%.
机译:聚苯乙烯(PS)和聚丙烯(PP)的二元降解在力学水平上通过组合先前建模工作中开发的单个组件模型来建模[T.M.俄勒冈克鲁斯Woo,H.-W。 Wong,S.S.Shan,L.J.Broadbelt,Macromolecules 35(2002)7830;和TM值。克鲁斯(H.-W. Wong,L.J. Broadbelt,Macromolecules 36(2003)9594],并增加了PS和PP衍生物种之间的相互作用。为PS / PP混合物的热解开发的完整二元模型由37,000多个反应组成,并跟踪了277种。在二元模型中,由于PS和PP不相容,因此不允许不同聚合物类型的聚合物之间进行相互作用。但是,每种聚合物类型的一部分低分子量自由基(LMWR)可以扩散到另一种聚合物类型中。这是模型中唯一可调整的参数。根据380℃下50/50 wt%PS / PP混合物的实验数据,我们发现,允许0.037%的PS衍生的LMWR扩散到PP中,PP降解率几乎提高了四倍。在这些条件下通过实验观察到。为了提高PP降解速率的提高,在二元热解过程中使用了固态剪切粉碎(SSSP)和PS / PP重量比的变化来控制PS和PP之间的界面区域(在常规二元热解过程中不进行预混合)实验)。与不进行预混合相比,使用SSSP将PS和PP混合可以使PP降解速率的提高提高25%。为了模拟这种增强,可以扩散到PP中的低分子量PS自由基的比例增加到0.10%。

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