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硬质聚氯乙烯塑料水热处理过程中氯的迁移机制

Migration Mechanism of Chlorine during Hydrothermal Treatment of Rigid PVC Plastics.

作者信息

Zhang Ling, Wang Qing, Xu Faxing, Wang Zhenye

机构信息

Engineering Research Centre of Oil Shale Comprehensive Utilization, Ministry of Education, Northeast Electric Power University, Jilin City 132012, China.

Jilin Institute of Chemical Technology, Jilin City 132022, China.

出版信息

Materials (Basel). 2023 Aug 25;16(17):5840. doi: 10.3390/ma16175840.

Abstract

Rigid PVC plastics (R-PVC) contain large amounts of chlorine, and improper disposal can adversely affect the environment. Nevertheless, there is still a lack of sufficient studies on hydrothermal treatment (HTT) for the efficient dechlorination of R-PVC. To investigate the migration mechanism of chlorine during the HTT of R-PVC, R-PVC is treated with HTT at temperatures ranging from 220 °C to 300 °C for 30 min to 90 min. Hydrochar is characterized via Fourier transform infrared spectrometry and X-ray photoelectron spectroscopy. The results revealed that the hydrothermal temperature is the key factor that affects the dechlorination of R-PVC. Dramatic dechlorination occurs at temperatures ranging from 240 °C to 260 °C, and the dechlorination efficiency increases with the increase in the hydrothermal temperature. The main mechanism for the dechlorination of R-PVC involves the nucleophilic substitution of chlorine by -OH. CaCO can absorb HCl released by R-PVC and hinder the autocatalytic degradation of R-PVC; hence, the dechlorination behavior of R-PVC is different from that of pure PVC resins. Based on these results, a possible degradation process for R-PVC is proposed. This study suggests that HTT technology can be utilized to convert organochlorines in R-PVC to calcium chloride, achieving the simultaneous dechlorination of R-PVC and utilization of products.

摘要

硬质聚氯乙烯塑料(R-PVC)含有大量氯,不当处置会对环境产生不利影响。然而,对于R-PVC高效脱氯的水热处理(HTT)仍缺乏足够的研究。为了研究R-PVC水热处理过程中氯的迁移机制,在220℃至300℃的温度下对R-PVC进行30分钟至90分钟的水热处理。通过傅里叶变换红外光谱和X射线光电子能谱对水热炭进行表征。结果表明,水热温度是影响R-PVC脱氯的关键因素。在240℃至260℃的温度下会发生显著脱氯,且脱氯效率随水热温度的升高而增加。R-PVC脱氯的主要机制涉及-OH对氯的亲核取代。CaCO₃可以吸收R-PVC释放的HCl并阻碍R-PVC的自催化降解;因此,R-PVC的脱氯行为与纯PVC树脂不同。基于这些结果,提出了R-PVC可能的降解过程。本研究表明,水热处理技术可用于将R-PVC中的有机氯转化为氯化钙,实现R-PVC的同步脱氯和产物利用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/948c/10488432/b0415231f99a/materials-16-05840-g001.jpg

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