Plastic waste gasification for low-carbon hydrogen production: a comprehensive review

IF 3.2 Q2 CHEMISTRY, PHYSICAL
Energy advances Pub Date : 2025-01-15 DOI:10.1039/D4YA00292J
Muhammad Aamir Bashir, Tuo Ji, Jennifer Weidman, Yee Soong, McMahan Gray, Fan Shi and Ping Wang
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引用次数: 0

Abstract

Hydrogen is one of the most important feedstocks for the chemical industry, power production, and the decarbonization of other sectors that rely on natural gas. The production of hydrogen from plastics enables sustainable use of plastic waste and offers significant environmental benefits. Gasification emerges as a promising route for chemical recycling, converting plastic into hydrogen and other valuable chemicals. Although the gasification of plastic waste has recently gained attention, the number of studies regarding low-carbon hydrogen production is still limited. The effective integration of carbon capture, utilization, and storage (CCUS) is essential for achieving low-carbon hydrogen production via gasification, which enables the efficient capture and storage of CO2 emissions. Incorporating coal waste and biomass into plastic gasification can synergistically enhance reforming reactions for hydrogen production, reduce tar content, and resolve feeding issues caused by plastic stickiness. Based on the previous studies, this paper briefly reviews the mechanisms of plastic gasification including plastic depolymerization, reforming, tar and char formation, and gasification; the discussions on feedstocks and effects of operating conditions on H2 production including plastic-type, temperature, steam/carbon ratio, equivalence ratio, and catalysts; and the integration of CCUS and alternative recovery processes in plastic gasification for low-carbon hydrogen.

Abstract Image

塑料废弃物气化低碳制氢技术综述
氢气是化学工业、电力生产和其他依赖天然气的部门脱碳的最重要原料之一。从塑料中生产氢可以实现塑料废物的可持续利用,并提供显著的环境效益。气化成为一种很有前途的化学回收途径,将塑料转化为氢和其他有价值的化学物质。虽然塑料废物的气化最近引起了人们的关注,但关于低碳制氢的研究数量仍然有限。碳捕获、利用和储存(CCUS)的有效整合对于通过气化实现低碳制氢至关重要,这使得二氧化碳排放的有效捕获和储存成为可能。将煤矸石和生物质加入到塑料气化中,可以协同增强制氢重整反应,降低焦油含量,解决塑料粘稠造成的进料问题。在前人研究的基础上,综述了塑料气化的机理,包括塑料解聚、重整、焦油和炭的形成以及气化;讨论了原料和操作条件对制氢的影响,包括塑料类型、温度、汽碳比、当量比和催化剂;以及CCUS与塑料气化低碳氢替代回收工艺的整合。
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CiteScore
1.80
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