IF 5.2 3区 工程技术 Q2 ENERGY & FUELS Energy & Fuels Pub Date : 2025-02-07 DOI:10.1021/acs.energyfuels.4c0531610.1021/acs.energyfuels.4c05316
Hongqi Wang, Matthijs van Akker, Jozef G. M. Winkelman, André Heeres and Hero Jan Heeres*, 
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引用次数: 0

摘要

目前的塑料价值链是高度线性的,导致大量废塑料危害环境和人类健康。需要进行回收利用,而催化热解尤其适合将富含聚烯烃的塑料废料转化为有用的化学品,如苯、甲苯和二甲苯(BTX)。本文展示了在连续双流化床反应器中对聚丙烯进行原位催化热解以生产 BTX 的过程。第一个流化床反应器的最佳热解温度为 550 °C,BTX 产率为 22.3 wt %(基于聚丙烯投入量)。降低氮气流速和使用更小粒径的催化剂有利于 BTX 的形成。我们的新型反应器概念在较长的在线时间(TOS,10 小时)内表现出良好的运行稳定性。TOS 期间催化剂活性略有降低,这一点从 BTX 产量的小幅下降可以看出。详细的催化剂表征研究表明,焦炭的形成是催化剂失活的主要原因。此外,化学选择性也是 TOS 的一个函数,对苯和甲苯的选择性降低,而生成的二甲苯量增加。
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Catalytic Pyrolysis of Polypropylene to Benzene, Toluene, and Xylene (BTX) Using a Double-Fluidized-Bed Reactor

The current plastic value chain is highly linear, leading to large amounts of waste plastics that harm the environment and human health. Recycling is required, and among the options, catalytic pyrolysis is particularly suited to convert polyolefin-rich plastic waste into useful chemicals such as benzene, toluene, and xylene (BTX). In this paper, we demonstrate ex situ catalytic pyrolysis of polypropylene in a continuous double-fluidized-bed reactor to produce BTX. The optimal pyrolysis temperature in the first fluidized-bed reactor was 550 °C, giving a BTX yield of 22.3 wt % (based on PP input). Lowering the nitrogen flow rate and the use of smaller catalyst particle sizes favor BTX formation. Our novel reactor concept showed good operational stability at longer times on stream (TOS, 10 h). Catalyst activity was slightly reduced during TOS, as is evident from a small decrease in BTX yields. Detailed catalyst characterization studies showed that coke formation is the main reason for catalyst deactivation. In addition, chemoselectivity was also a function of TOS and the selectivity to benzene and toluene decreased, while higher amounts of xylenes were formed.

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来源期刊
Energy & Fuels
Energy & Fuels 工程技术-工程:化工
CiteScore
9.20
自引率
13.20%
发文量
1101
审稿时长
2.1 months
期刊介绍: Energy & Fuels publishes reports of research in the technical area defined by the intersection of the disciplines of chemistry and chemical engineering and the application domain of non-nuclear energy and fuels. This includes research directed at the formation of, exploration for, and production of fossil fuels and biomass; the properties and structure or molecular composition of both raw fuels and refined products; the chemistry involved in the processing and utilization of fuels; fuel cells and their applications; and the analytical and instrumental techniques used in investigations of the foregoing areas.
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