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通过热解从塑料废物中生产液体燃料的最新进展:重点关注聚烯烃和聚苯乙烯。

Recent advances in liquid fuel production from plastic waste via pyrolysis: Emphasis on polyolefins and polystyrene.

作者信息

Valizadeh Soheil, Valizadeh Behzad, Seo Myung Won, Choi Yong Jun, Lee Jechan, Chen Wei-Hsin, Lin Kun-Yi Andrew, Park Young-Kwon

机构信息

School of Environmental Engineering, University of Seoul, Seoul 02504, South Korea.

Department of Global Smart City, Sungkyunkwan University, 2066 Seobu-ro, Jangan-gu, Suwon, 16419, South Korea; School of Civil, Architectural Engineering, and Landscape Architecture, Sungkyunkwan University, 2066 Seobu-ro, Jangan-gu, Suwon, 16419, South Korea.

出版信息

Environ Res. 2024 Apr 1;246:118154. doi: 10.1016/j.envres.2024.118154. Epub 2024 Jan 12.

Abstract

The management of plastic waste (PW) has become an indispensable worldwide issue because of the enhanced accumulation and environmental impacts of these waste materials. Thermo-catalytic pyrolysis has been proposed as an emerging technology for the valorization of PW into value-added liquid fuels. This review provides a comprehensive investigation of the latest advances in thermo-catalytic pyrolysis of PW for liquid fuel generation, by emphasizing polyethylene, polypropylene, and polystyrene. To this end, the current strategies of PW management are summarized. The various parameters affecting the thermal pyrolysis of PW (e.g., temperature, residence time, heating rate, pyrolysis medium, and plastic type) are discussed, highlighting their significant influence on feed reactivity, product yield, and carbon number distribution of the pyrolysis process. Optimizing these parameters in the pyrolysis process can ensure highly efficient energy recovery from PW. In comparison with non-catalytic PW pyrolysis, catalytic pyrolysis of PW is considered by discussing mechanisms, reaction pathways, and the performance of various catalysts. It is established that the introduction of either acid or base catalysts shifts PW pyrolysis from the conventional free radical mechanism towards the carbonium ion mechanism, altering its kinetics and pathways. This review also provides an overview of PW pyrolysis practicality for scaling up by describing techno-economic challenges and opportunities, environmental considerations, and presenting future outlooks in this field. Overall, via investigation of the recent research findings, this paper offers valuable insights into the potential of thermo-catalytic pyrolysis as an emerging strategy for PW management and the production of liquid fuels, while also highlighting avenues for further exploration and development.

摘要

由于塑料废物(PW)的积累不断增加及其对环境的影响,其管理已成为一个全球不可或缺的问题。热催化热解已被提出作为一种将PW转化为增值液体燃料的新兴技术。本综述通过重点关注聚乙烯、聚丙烯和聚苯乙烯,对用于液体燃料生产的PW热催化热解的最新进展进行了全面研究。为此,总结了当前PW管理的策略。讨论了影响PW热解的各种参数(如温度、停留时间、加热速率、热解介质和塑料类型),强调了它们对热解过程中原料反应性、产物产率和碳数分布的重大影响。在热解过程中优化这些参数可以确保从PW中高效回收能量。与非催化PW热解相比,通过讨论各种催化剂的机理、反应途径和性能,对PW的催化热解进行了研究。结果表明,引入酸或碱催化剂会使PW热解从传统的自由基机理转变为碳正离子机理,从而改变其动力学和反应途径。本综述还通过描述技术经济挑战与机遇、环境因素,并展望该领域的未来前景,概述了PW热解放大生产的实用性。总体而言,通过对近期研究结果的调查,本文为热催化热解作为一种新兴的PW管理和液体燃料生产策略的潜力提供了有价值的见解,同时也突出了进一步探索和发展的途径。

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