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Design studies for monolithic high temperature shift catalysts: Effect of operational parameters

机译:整体式高温变换催化剂的设计研究:操作参数的影响

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In this study, the performance of a commercial high temperature shift (HTS) catalyst has been investigated. The catalyst was a wash-coated ceramic monolith type and used to adjust the H2/CO ratio in a simulated syngas stream. In the experiments, the effects of inlet gas composition, gas hourly space velocity, inlet steam to CO ratio and reaction temperature have been investigated. The results showed that all these parameters have considerable influence on the design of HTS reactor. Precious metal based monolith catalysts enable working under high space velocities and thus reduce the volume of HTS reactor. Specifically defined selectivity, as ratio of the total amount of CO2 and H2 to the amount of CO2 formed during the process, seems to be a good measure of possible unwanted side reactions that might occur. It was found that the selectivity ratio should be ideally about two for HTS process, minimizing the formation of side reactions. Selectivity values below 2.0 indicate the presence of unbalanced H2 which is incompatible with WGS reaction stoichiometry. Results showed that steam is an effective parameter in determining the probability of side reactions, especially the reactions leading to the catalyst deactivation through coke deposition. Another point is that coking tendency of the catalyst is more severe at lower operating temperatures. The formation of methane, an unwanted by-product, was seen to be favored by lower gas hourly space velocities, possibly via the reaction with H2. The formation of methane results in hydrogen consumption to some extent and consequently alters the product composition. The optimum operating conditions of the wash-coated monolith type HTS catalyst studied were found to be as follows: Temperature =~375-400 °C, GHSV =-50,000 h~(-1) and the inlet steam to CO ratio = ~2.0.
机译:在这项研究中,已经研究了商业高温变换(HTS)催化剂的性能。该催化剂是洗涂的陶瓷整体式催化剂,用于调节模拟合成气流中的H2 / CO比。在实验中,研究了入口气体组成,气体时空速度,入口蒸汽与CO之比和反应温度的影响。结果表明,所有这些参数对高温超导反应堆的设计有相当大的影响。基于贵金属的整体催化剂能够在高空速下工作,从而减少了HTS反应器的体积。作为过程中形成的CO2和H2总量与CO2总量之比,特别定义的选择性似乎是对可能发生的有害副反应的良好衡量。已经发现,对于HTS方法,选择性比应该理想地为大约2,从而最小化副反应的形成。低于2.0的选择性值表明存在不平衡的H2,这与WGS反应化学计量不兼容。结果表明,蒸汽是确定副反应可能性的有效参数,尤其是导致通过焦炭沉积使催化剂失活的反应。另一点是,在较低的操作温度下,催化剂的焦化趋势更加严重。甲烷的形成是一种有害的副产物,它被认为是气体小时空速较低的原因,可能是通过与H2的反应。甲烷的形成在某种程度上导致氢消耗,因此改变了产物组成。研究发现,洗涤涂层整料型高温超导催化剂的最佳操作条件如下:温度=〜375-400°C,GHSV = -50,000 h〜(-1),入口蒸汽与CO的比=〜2.0 。

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