Experimental Research on the Production of Hydrogen-Rich Synthesis Gas via the Air-Gasification of Olive Pomace: A Comparison between an Updraft Bubbling Bed and a Downdraft Fixed Bed

Hydrogen Pub Date : 2023-10-01 DOI:10.3390/hydrogen4040046
Luís Carmo-Calado, Manuel Jesús Hermoso-Orzáez, Daniel Diaz-Perete, José La Cal-Herrera, Paulo Brito, Julio Terrados-Cepeda
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Abstract

The present study compares the performance of bubbling-bed updraft and a fixed-bed downdraft gasification systems for producing hydrogen-rich (H2) syngas from olive pomace on a semi-industrial scale. The focus is on examining the effects of temperature and efficiency ratio (ER) on the composition, low heat value (LHV), carbon conversion efficiency (CCE), and cold gas efficiency (CGE) of the produced syngas. The results presented for the fixed bed show the concentration of H2 (15.6–16.52%), CGE (58.99–66.80%), CCE (69.07–71.86%), and LHV (4.82–5.70 MJ/Nm3). The CGE reaches a maximum of 66.80% at a temperature of 700 °C and an ER of 0.20, while the syngas yield (2.35 Nm3/kg) presents a maximum at a temperature 800 °C and an ER of 0.21, with a tendency to decrease with the increase in the temperature. For the bubbling fluidized bed, results were shown for the concentration of H2 (12.54–12.97%), CGE (70.48–89.51%), CCE (75.83–78.49%), and LHV (6.10–6.93 MJ/Nm3), where, at a temperature of 700 °C and an ER of 0.23, the CGE is 89.51% and the LHV is 6.93 MJ/Nm3, with a tendency to decrease with the increase in the temperature, while the maximum syngas yield (2.52 Nm3/kg) occurs at a temperature of 800 °C and an ER of 0.23. Comparing the two gasification processes, the fixed bed has a higher concentration of H2 at all the temperatures and ERs of the experiments; however, the bubbling fluidized bed has a higher CGE. These findings have implications for applications involving syngas, such as energy production and chemical synthesis, and can guide process optimization and enhance energy efficiency. The information obtained can also contribute to emission mitigation strategies and improvements in syngas-based synthesis reactors.
橄榄渣空气气化生产富氢合成气的实验研究:上升气流鼓泡床与下降气流固定床的比较
本研究在半工业规模上比较了从橄榄渣中生产富氢(H2)合成气的起泡床上升气流气化系统和固定床下气流气化系统的性能。重点研究了温度与效率比(ER)对合成气组成、低热值(LHV)、碳转化效率(CCE)和冷气效率(CGE)的影响。结果表明,固定床的H2(15.6 ~ 16.52%)、CGE(58.99 ~ 66.80%)、CCE(69.07 ~ 71.86%)和LHV (4.82 ~ 5.70 MJ/Nm3)浓度均高于固定床。CGE在700℃时达到最大值66.80%,ER为0.20;合成气产率在800℃时达到最大值(2.35 Nm3/kg), ER为0.21,且随着温度的升高有降低的趋势。鼓泡流化床,结果显示H2的浓度(12.54 - -12.97%),CGE (70.48 - -89.51%), CCE(75.83 - -78.49%)和低热值(6.10 - -6.93 MJ / Nm3),在温度为700°C和一个ER 0.23, CGE是89.51%,求得6.93 MJ / Nm3,倾向于减少与增加的温度,而最大合成气产量(2.52 Nm3 /公斤)发生在温度为800°C和一个ER为0.23。对比两种气化工艺,固定床在实验各温度和er下H2浓度均较高;而鼓泡流化床的CGE值更高。这些发现对合成气的应用具有重要意义,例如能源生产和化学合成,并可以指导过程优化和提高能源效率。所获得的信息还可有助于减少排放战略和改进合成气合成反应堆。
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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