通过热解和在线干法重整生产合成气实现二氧化碳和废塑料联合价值化的启示

IF 7.2 2区 工程技术 Q1 CHEMISTRY, APPLIED Fuel Processing Technology Pub Date : 2024-01-01 DOI:10.1016/j.fuproc.2023.108024
Leire Olazar , Juan Fernando Saldarriaga , Gartzen Lopez , Laura Santamaria , Maider Amutio , Martin Olazar , Maite Artetxe
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引用次数: 0

摘要

本文评估了通过热解和在线催化干重整生产合成气进行塑料增值的潜力。之前的研究表明,由锥形喷射床反应器进行快速热解和流化床反应器进行催化蒸汽转化组成的连续工艺是合适的。为了在干重整条件下进一步应用该技术,我们采用了平衡模拟来分析工艺性能,因为开发和优化该技术以生产高质量合成气需要详细了解工艺参数的复杂影响。因此,本研究探讨了主要工艺参数,即温度、CO2/C 比率和塑料类型对工艺性能的影响。此外,还通过改变蒸汽/碳的比例,评估了在干法重整过程中蒸汽共馈在调节合成气 H2/CO 比率方面所起的作用。研究结果清楚地表明,必须严格控制工艺条件,以确保合成气的高转化率,避免出现反向 WGS 等不希望发生的反应。在所研究的塑料中,聚烯烃生产合成气的潜力最大,但聚苯乙烯可以通过联合转化战略生产出高质量的合成气。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Insight into the joint valorization of CO2 and waste plastics by pyrolysis and in line dry reforming for syngas production

This paper assesses the potential of plastics valorization by pyrolysis and in line catalytic dry reforming for syngas production. Previous studies showed the suitability of a continuous process made up of a conical spouted bed reactor for fast pyrolysis and a fluidized bed reactor for catalytic steam reforming. In order to step further in the application of this technology under dry reforming conditions, equilibrium simulation was approached to analyze process performance, as the development and optimization of this technology for the production of high-quality syngas requires understanding in detail the complex influence of process parameters. Thus, this study deals with the influence of main process parameters, namely, temperature, CO2/C ratio and the type of plastic, on the process performance. Furthermore, the role played by steam co-feeding in the dry reforming in order to adjust syngas H2/CO ratio was evaluated by varying the steam/carbon ratio. The obtained results clearly show that a strict control of process conditions is required to ensure high conversion to syngas and avoid undesired reactions, such as reverse WGS. Among the plastics studied, polyolefins are those of highest potential for syngas production, but polystyrene allows producing a high quality syngas through a combined reforming strategy.

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来源期刊
Fuel Processing Technology
Fuel Processing Technology 工程技术-工程:化工
CiteScore
13.20
自引率
9.30%
发文量
398
审稿时长
26 days
期刊介绍: Fuel Processing Technology (FPT) deals with the scientific and technological aspects of converting fossil and renewable resources to clean fuels, value-added chemicals, fuel-related advanced carbon materials and by-products. In addition to the traditional non-nuclear fossil fuels, biomass and wastes, papers on the integration of renewables such as solar and wind energy and energy storage into the fuel processing processes, as well as papers on the production and conversion of non-carbon-containing fuels such as hydrogen and ammonia, are also welcome. While chemical conversion is emphasized, papers on advanced physical conversion processes are also considered for publication in FPT. Papers on the fundamental aspects of fuel structure and properties will also be considered.
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