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Parametric study of membrane reactors for hydrogen production via high-temperature water gas shift reaction

机译:通过高温水煤气变换反应制氢的膜反应器的参数研究

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This study presents numerical studies of hydrogen production performance via water gas shift reaction in membrane reactor. The pre-exponential factor in describing the hydrogen permeation flux is used as the main parameter to account for the membrane permeance variation. The operating pressure, temperature and H_2O/CO molar ratio are chosen in the 1-20 atm, 400-600 ℃ and 1-3 ranges, respectively. Based on the numerical simulation results three distinct CO conversion regimes exist based on the pre-exponential factor value. For low pre-exponential factors corresponding to low membrane permeance, the CO conversion approaches to that obtained from a conventional reactor without hydrogen removal. For high pre-exponential factor, high CO conversion and H_2 recovery with constant values can be obtained. For intermediate pre-exponential factor range both CO conversion and H_2 recovery vary linearly with the pre-exponential factor. In the high membrane permeation case CO conversion and H_2 recovery approach limiting values as the operating pressure increases. Increasing the H_2O/CO molar ratio results in an increase in CO conversion but decrease in H_2 recovery due to hydrogen permeation driving force reduction. As the feed rate increases in the reaction side both the CO conversion and hydrogen recovery decrease because of decreased reactant residence time. The sweep gas flow rate has a significant effect on hydrogen recovery. Low sweep gas flow rate results in low CO conversion H_2 recovery while limiting CO conversion and hydrogen recovery can be reached for the high membrane permeance and high sweep gas flow rate cases.
机译:这项研究提出了在膜反应器中通过水煤气变换反应制氢性能的数值研究。描述氢渗透通量的前指数因子用作解释膜渗透率变化的主要参数。操作压力,温度和H_2O / CO摩尔比分别在1-20 atm,400-600℃和1-3范围内选择。基于数值模拟结果,基于指数前因子值存在三种不同的CO转化方案。对于与膜渗透率低相对应的低指数前因子,CO转化率接近于不脱氢的常规反应器获得的CO转化率。对于高的指数前因子,可以获得恒定值的高CO转化率和H_2回收率。对于中间的指数前因子范围,CO转化率和H_2回收率均随指数前因子线性变化。在高膜渗透率的情况下,随着工作压力的增加,CO转化率和H_2回收率接近极限值。 H_2O / CO摩尔比的增加导致CO转化率的增加,但是由于氢渗透驱动力的降低,H_2的回收率降低。随着反应侧进料速率的增加,由于减少的反应物停留时间,因此CO转化率和氢气回收率均降低。吹扫气体流速对氢气回收有重大影响。低吹扫气流速导致低的CO转化率H_2回收,同时限制了CO转化率,而对于高膜渗透率和高吹扫气流速的情况,则可以达到氢气回收率。

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