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Carbon Dioxide Reforming of Methane To Produce Synthesis Gas over Metal-Supported Catalysts: State of the Art

机译:甲烷二氧化碳重整在金属负载型催化剂上产生合成气:现有技术

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摘要

Carbon dioxide reforming of methane produces synthesis gas with a low hydrogen to carbon monoxide ratio, which is desirable for many industrial synthesis processes. This reaction also has very important environmental implications since both methane and carbon dioxide contribute to the greenhouse effect. Converting these gases into a valuable feedstock may significantly reduce the atmospheric emissions of CO2 and CH4. In this paper, we present a comprehensive review on the thermodynamics, catalyst selection and activity, reaction mechanism, and kinetics of this important reaction. Recently, research has centered on the development of catalysts and the feasible applications of this reaction in industry. Group VIII metals supported on oxides are found to be effective for this reason. However, carbon deposition causing catalyst deactivation is the major problem inhibiting the industrial application of the CO2/CH4 reaction. Ni-based catalysts impregnated on certain supports show carbon-free operation and thus attract much attention. To develop an effective catalyst for CO2 reforming of CH4 and accelerate the commercial application of the reaction, the following are identified to be the most important areas for future work: (1) selection of metal and support and studying the effect of their interaction on catalyst activity; (2) the effect of different promoter on catalyst activity; (3) the reaction mechanism and kinetics; and (4) pilot reactor performance and scale-up operation.
机译:甲烷二氧化碳重整产生具有低氢的合成气,与一氧化碳比例为本,对于许多工业合成方法是期望的。这种反应也具有非常重要的环境影响,因为甲烷和二氧化碳均导致温室效应。将这些气体转化为有价值的原料可显着降低CO 2和CH4的大气排放。在本文中,我们对这种重要反应的热力学,催化剂选择和活性,反应机制和动力学进行了全面的审查。最近,研究以催化剂的发展为中心,在工业中的这种反应的可行应用。发现氧化物支持的第VIII组金属对于此原因是有效的。然而,导致催化剂失活的碳沉积是抑制CO 2 / CH4反应的工业应用的主要问题。基于Ni的催化剂浸渍在某些载体上显示出无碳操作,从而吸引了很多关注。为了开发CH4的二氧化碳重整的有效催化剂并加速反应的商业应用,将确定以下是未来工作中最重要的领域:(1)金属和支持选择并研究其对催化剂的相互作用的影响活动; (2)不同启动子对催化剂活性的影响; (3)反应机制和动力学; (4)试验反应堆性能和扩展操作。

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