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首页> 外文期刊>Journal of Cleaner Production >Hydrogen production and carbon dioxide enrichment from ethanol steam reforming followed by water gas shift reaction
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Hydrogen production and carbon dioxide enrichment from ethanol steam reforming followed by water gas shift reaction

机译:乙醇蒸汽重整后进行水煤气变换反应制氢和富集二氧化碳

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摘要

Hydrogen production from a two-stage reaction, namely, the ethanol steam reforming (ESR) followed by the water gas shift reaction (WGSR), is experimentally investigated in this study. A Ni/Al2O3 catalyst and a Fe/Cr2O3 catalyst are employed to trigger the ESR and WGSR, respectively, and four operating parameters, including the feed liquid flow rate, water-to-carbon (H2O/C) molar ratio, ESR temperature, and WGSR temperature, are taken into account. To analyze the impact of the operating parameters upon the chemical reactions and maximize the H-2 yield from ethanol, the Taguchi method considering the four factors along with three levels is adopted. The results suggest that the influences of the factors on the H-2 yield are ranked by H2O/C ratio > ESR temperature > WGSR temperature > liquid flow rate. In light of the optimal operation suggested by the Taguchi approach, ethanol is completely consumed and the maximum H-2 yield is 4.26 mol/(mol C2H5OH). This value accounts for around 73% of theoretical H-2 yield based on thermodynamic analysis. Meanwhile, the CO2 concentration in the product gas is enriched to 21.77%, whereas the CO one is as low as 0.81%. These evidences reveal that the two-stage reaction can reach the requirement of high H-2 yield along with low CO formation, and is conducive to CO2 capture. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本研究通过实验研究了两步反应制氢,即乙醇蒸汽重整(ESR),然后进行水煤气变换反应(WGSR)。使用Ni / Al2O3催化剂和Fe / Cr2O3催化剂分别触发ESR和WGSR,并采用了四个操作参数,包括进料流速,水碳比(H2O / C),ESR温度,和WGSR温度都考虑在内。为了分析操作参数对化学反应的影响并最大程度地提高乙醇的H-2收率,采用了考虑了四个因素和三个水平的Taguchi方法。结果表明,影响因素对H-2收率的影响程度按H2O / C比> ESR温度> WGSR温度>液体流速进行排序。根据Taguchi方法建议的最佳操作,乙醇被完全消耗掉,并且H-2的最大产量为4.26 mol /(mol C2H5OH)。根据热力学分析,该值约占理论H-2收率的73%。同时,产物气中的CO 2浓度增至21.77%,而CO 1的浓度低至0.81%。这些证据表明,两步反应可以达到高H-2收率和低CO生成的要求,有利于CO2的捕集。 (C)2017 Elsevier Ltd.保留所有权利。

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