利用气相色谱-紫外光谱技术开发和评估半工业规模流化床蒸汽裂解炉产品气体混合物的方法

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.2023.108030
Chahat Mandviwala, Renesteban Forero Franco, Ivan Gogolev, Judith González-Arias, Teresa Berdugo Vilches, Isabel Cañete Cañete Vela, Henrik Thunman, Martin Seemann
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引用次数: 0

摘要

在流化床中进行蒸汽裂解可替代传统的蒸汽裂解,从而实现碳氢化合物的可持续生产。这种方法引起了人们的兴趣,特别是在回收塑料以生产有价值碳氢化合物的背景下。要将这种工艺整合到现有的石油化工集群中,就必须对这种新原料所产生的产品进行彻底的表征。这项工作的重点是解决与物种量化和表征时间相关的挑战,以评估蒸汽裂解工艺产生的产品混合物。实验在半工业规模的双流化床蒸汽裂解炉中进行,使用聚乙烯作为原料。为了对从 C1 到 C18 的物种进行采样,引入了冷却、洗涤和吸附等步骤。这些步骤与 GC-VUV(气相色谱-真空紫外分光光度法)和其他广泛认可的分析方法相结合,对采样物质进行量化。主要重点是将 GC-VUV 分析作为一种合适的表征方法,用于识别和量化 C4 至 C18 物种,在聚乙烯蒸汽裂解(750 °C 至 850 °C)过程中获得的产品混合物中,C4 至 C18 物种最多可占 35%。对 C6 至 C18 碳氢化合物进行定量成为时间上的关键步骤,与传统的表征方法相比,GC-VUV 可在 1/6 的分析时间内实现定量,并且定量效果相对较好。
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Method development and evaluation of product gas mixture from a semi-industrial scale fluidized bed steam cracker with GC-VUV

Steam cracking in fluidized beds offers an alternative to conventional steam cracking for sustainable hydrocarbon production. This approach has gained interest, particularly in the context of recycling plastics to generate valuable hydrocarbons. Integrating this process into existing petrochemical clusters necessitates a thorough characterization of the products derived from this new feedstock. This work focuses on addressing the challenges associated with species quantification and characterization time for assessing the product mixture resulting from a steam cracking process. The experiments were conducted in a semi-industrial scale dual fluidized bed steam cracker, utilizing polyethylene as the feedstock. To sample species spanning from C1 to C18, cooling, scrubbing, and adsorption were introduced. These steps were integrated with GC-VUV (Gas Chromatography with Vacuum Ultraviolet Spectroscopy) and other widely recognized analytical methods to quantify the sampled species. The primary focus was on GC-VUV analysis as a suitable characterization method for identifying and quantifying C4 to C18 species, which can constitute up to 35% of the product mixture obtained from polyethylene steam cracking (750 °C to 850 °C). Quantifying C6 to C18 hydrocarbons becomes the time-critical step, with GC-VUV potentially achieving this in 1/6th of the analysis time and with relatively optimal quantification compared to the traditional characterization methods.

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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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