Hydrothermal gasification of waste biomass and plastics into hydrogen-rich syngas: a review

IF 15 2区 环境科学与生态学 Q1 CHEMISTRY, MULTIDISCIPLINARY Environmental Chemistry Letters Pub Date : 2024-12-19 DOI:10.1007/s10311-024-01793-5
Pankaj Kumar, Ayush Dave, Sivamohan N. Reddy, Sonil Nanda
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Abstract

The current global greenhouse gas emissions have increased by over 90% since 1860 primarily due to our overreliance on fossil fuels, petrochemicals and their derivatives. Production of petrochemical plastics is also reaching 400 million metric tons in 2023. The lack of effective thermochemical processes for converting wet feedstocks and complex residues such as plastics is calling for hydrothermal gasification as an efficient approach to producing syngas. The demand for hydrogen production through greener approaches is also rising to compete with the commercial steam reforming of natural gas. Here, we review the conversion of biomass and plastics by hydrothermal gasification into hydrogen-rich syngas with a focus on the process parameters influencing the conversion of a variety of feedstock types. Parameters influencing hydrothermal gasification of biomass and plastics include temperature, pressure, reaction time, feedstock concentration, catalysts and reactor types. Several synergetic effects also influence product distribution during the co-processing of biomass and plastics during hydrothermal gasification. Processes that impact biomass conversion to syngas are hydrolysis, water–gas shift, methanation, hydrogenation, steam reforming and polymerization.

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将废弃生物质和塑料水热气化为富氢合成气:综述
自1860年以来,目前全球温室气体排放量增加了90%以上,主要原因是我们过度依赖化石燃料、石化产品及其衍生物。到2023年,石化塑料的产量也将达到4亿吨。由于缺乏有效的热化学过程来转化湿原料和复杂的残留物,如塑料,因此需要水热气化作为生产合成气的有效方法。通过更环保的方法生产氢气的需求也在上升,以与天然气的商业蒸汽重整竞争。本文综述了通过水热气化将生物质和塑料转化为富氢合成气的研究进展,重点介绍了影响各种原料转化的工艺参数。影响生物质和塑料水热气化的参数包括温度、压力、反应时间、原料浓度、催化剂和反应器类型。在水热气化过程中,生物质和塑料协同加工过程中的几种协同效应也影响产品分布。影响生物质转化为合成气的过程包括水解、水气转换、甲烷化、加氢、蒸汽重整和聚合。
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来源期刊
Environmental Chemistry Letters
Environmental Chemistry Letters 环境科学-工程:环境
CiteScore
32.00
自引率
7.00%
发文量
175
审稿时长
2 months
期刊介绍: Environmental Chemistry Letters explores the intersections of geology, chemistry, physics, and biology. Published articles are of paramount importance to the examination of both natural and engineered environments. The journal features original and review articles of exceptional significance, encompassing topics such as the characterization of natural and impacted environments, the behavior, prevention, treatment, and control of mineral, organic, and radioactive pollutants. It also delves into interfacial studies involving diverse media like soil, sediment, water, air, organisms, and food. Additionally, the journal covers green chemistry, environmentally friendly synthetic pathways, alternative fuels, ecotoxicology, risk assessment, environmental processes and modeling, environmental technologies, remediation and control, and environmental analytical chemistry using biomolecular tools and tracers.
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