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Thermodynamic equilibrium analysis of water-gas shift reaction using syngases-effect of CO_2 and H_2S contents

机译:合成气对CO_2和H_2S含量影响的水煤气变换反应热力学平衡分析

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Thermodynamic equilibrium of water-gas shift reaction (WGSR) under various temperatures, pressures and steam-to-CO (SIC) ratios was analyzed by Gibbs free energy minimization method. Coal-derived syngases with various CO2 and H2S contents were used as the feedstock. Based on the obtained results, it was found that CH4 and carbon formations were enhanced when syngas CO2 content increases. Carbon-free WGSR can be resulted using high SIC ratio. However, CH4-free WGSR cannot be resulted even with low SIC ratios. From the H2O conversion and H-2 yield variations, the temperature at which reverse WGSR occurs can be identified and found to decrease with the increase in SIC ratio. Solid CaO sorbent was employed for both CO2 and H2S removals in WGSR when sour syngas was used as the feedstock. It was found that WGSR performance was enhanced due to the CO2 and H2S removals by CaO. The H2S concentration can be decreased with decreased SIC ratio while increasing the reaction pressure was not favourable for H-2 production and H2S removal in WGSR with CaO. Because WGSR performance enhancement due to CO2 and H2S removals occurred at high temperature, catalysts can be eliminated in sorption-enhanced WGSR. (C) 2017 Elsevier Ltd. All rights reserved.
机译:通过吉布斯自由能最小化方法分析了水煤气变换反应(WGSR)在各种温度,压力和蒸汽与CO(SIC)比下的热力学平衡。具有各种CO2和H2S含量的煤制合成气用作原料。基于获得的结果,发现当合成气CO 2含量增加时,CH 4和碳形成增加。使用高SIC比可以实现无碳WGSR。但是,即使SIC比率低,也无法获得不含CH4的WGSR。从H2O转化率和H-2收率变化,可以确定发生反向WGSR的温度,并发现其随SIC比的增加而降低。当使用酸性合成气作为原料时,在WGSR中采用固体CaO吸附剂去除CO2和H2S。发现由于CaO去除了CO2和H2S,WGSR性能得到了提高。降低SIC比可降低H2S浓度,而增加反应压力不利于WGSR和CaO去除H-2和H2S。由于在高温下会因去除CO2和H2S而提高WGSR性能,因此可以在吸附增强型WGSR中消除催化剂。 (C)2017 Elsevier Ltd.保留所有权利。

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