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Catalytic conversion of bio-oil in supercritical water: Influence of RuO2/γ-Al2O3 catalysts on gasification efficiencies and bio-methane production

机译:超临界水中生物油的催化转化:RuO2 /γ-al2O3催化剂对气化效率和生物甲烷产生的影响

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摘要

Catalytic supercritical water gasification of heavy (dewatered) bio-oil has been investigated in a batch reactor in the presence of ruthenium catalysts in the form of RuO2 on γ-Al2O3 support. The reactions were carried out at temperatures of 400 °C, 450 °C and 500 °C and reaction times of up to 60 min using 15 wt% of bio-oil feed. Increased ruthenium oxide loading led to increased carbon gasification efficiencies (CGE) and bio-methane production. Hence, using the 20 wt% RuO2/γ-Al2O3 catalyst, CGE was 97.4 wt% at 500 °C and methane yield reached nearly 30 wt% of the bio-oil feed, which gave a CH4/CO2 molar ratio of 1.28. There was evidence that the RuO2 was involved in the initial conversion of the bio-oil to carbon oxides and hydrogen as well as the reduction of the CO2 to methane via CO methanation. However, competition for CO consumption via the water-gas shift reaction was also possible due to the large presence of water as the reaction medium. This work therefore demonstrates that high concentrations of heavy fraction of bio-oil can be catalytically converted to a methane-rich gas product under hydrothermal conditions at moderate temperatures. The calorific values of the gas product reached up to 54 MJ kg−1, which is nearly 3 times the HHV of the bio-oil feed.
机译:已经在间歇式反应器中在钌催化剂存在下,以RuO2在γ-Al2O3载体上的形式,对重(脱水)生物油的催化超临界水气化进行了研究。使用15重量%的生物油进料,反应在400℃,450℃和500℃的温度下进行,并且反应时间长达60分钟。氧化钌负载量的增加导致碳气化效率(CGE)和生物甲烷生产的增加。因此,使用20 wt%的RuO2 /γ-Al2O3催化剂,在500°C下CGE为97.4 wt%,甲烷产率接近生物油原料的30 wt%,CH4 / CO2摩尔比为1.28。有证据表明,RuO2参与了生物油向碳氧化物和氢的初始转化,以及通过CO甲烷化将CO2还原为甲烷的过程。但是,由于大量存在水作为反应介质,因此也可能通过水煤气变换反应来竞争CO消耗。因此,这项工作表明,在中等温度下的水热条件下,高浓度的重质生物油可以催化转化为富含甲烷的气体产物。气体产品的热值高达54 MJ kg-1,几乎是生物油原料的HHV的3倍。

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    Onwudili JA; Williams PT;

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  • 年度 2016
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  • 正文语种 en
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