Li Yong, Kang Shengming, Han Wenwen, Yin Fengfu
College of Electromechanical Engineering, Qingdao University of Science and Technology, Qingdao 266061, China.
National Engineering Research Center of Advanced Tire Equipment and Key Materials, Qingdao University of Science and Technology, Qingdao 266061, China.
Molecules. 2024 Dec 23;29(24):6059. doi: 10.3390/molecules29246059.
Pyrolysis is recognized as a promising technology for waste plastics management. Although there have been many studies on pyrolysis of waste plastics, there is still a lack of in-depth research on the mechanism of synergistic effect between mixed plastics and the mechanism of product formation. In this paper, based on the pyrolysis characteristics of Polystyrene, Polyethylene, and mixed plastics (Polystyrene/Polyethylene), it is demonstrated that a synergistic effect exists in the co-pyrolysis of Polystyrene/Polyethylene and affects the pyrolysis behavior and pyrolysis products. It was found that polystyrene chain segments containing C=C double bonds, generated from the pyrolysis of polystyrene, initiated the pyrolysis of polyethylene during the polystyrene/polyethylene co-pyrolysis, resulting in the termination pyrolysis temperature of the co-pyrolysis being advanced by 19.8 K. Due to the reduction in the termination pyrolysis temperature by 19.8 K, the average activation energy of the co-pyrolysis was reduced by about 14%. Compared with the weighted values of single-component plastics (Polystyrene and Polyethylene), the actual oil production of co-pyrolysis increased by 9.7% to 89.80%. At the same time, the content of low molecular weight Styrene and Toluene in pyrolysis oil increased by 12.3% and 1.65%, respectively. This study provides a useful and comprehensive reference for realizing the closed cycle of "from plastics to plastics".
热解被认为是一种很有前景的废塑料管理技术。尽管已有许多关于废塑料热解的研究,但对于混合塑料之间协同效应的机制以及产物形成机制仍缺乏深入研究。本文基于聚苯乙烯、聚乙烯以及混合塑料(聚苯乙烯/聚乙烯)的热解特性,证明了聚苯乙烯/聚乙烯共热解过程中存在协同效应,并影响热解行为和热解产物。研究发现,聚苯乙烯热解产生的含C=C双键的聚苯乙烯链段在聚苯乙烯/聚乙烯共热解过程中引发了聚乙烯的热解,导致共热解的终止热解温度提前了19.8K。由于终止热解温度降低了19.8K,共热解的平均活化能降低了约14%。与单一组分塑料(聚苯乙烯和聚乙烯)的加权值相比,共热解的实际产油量提高了9.7%,达到89.80%。同时,热解油中低分子量苯乙烯和甲苯的含量分别增加了12.3%和1.65%。该研究为实现“从塑料到塑料”的闭环循环提供了有用且全面的参考。