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Effect of mass transfer limitations on catalyst performance during reduction and carburization of iron based Fischer-Tropsch synthesis catalysts

机译:传质限制对铁基费托合成催化剂还原和渗碳过程中催化剂性能的影响

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Existence of intraparticle mass transfer limitations under typical Fischer-Tropsch synthesis has been reported previously,but there is no suitable study on the existence of intraparticle diffusion limitations under pretreatment steps (reduction and activation) and their effect on catalytic performance for iron based catalysts.In this study,Fe-Cu-La-SiO2 catalysts were prepared by co-precipitation method.To investigate the intraparticle mass transfer limitation under reduction,activation and reaction steps,and its effect on catalytic performance,catalyst pellets with different sizes of 6,3,1 and 0.5 mm have been prepared.All catalysts were calcined,pretreated and tested under similar conditions.The catalysts were activated in hydrogen (5%H2in N2) at 450℃ for 3 h and exposed to syngas (H2/CO=1) at 270℃ and atmospheric pressure for 40 h.Afterwards,FTS reaction tests were performed for approximately 120 h to reach steady state conditions at 290℃,17 bar and a feed flow (syngas H2/CO=1) rate of 3 L/h (STP).Using small pellets resulted in higher CO conversion,FT reaction rate and C5+ productivity as compared with larger pellets.The small pellets reached steady state conditions just 20 h after starting the reaction.Whereas for larger pellets,CO conversion,FT reaction rate and C5+ productivity increased gradually,and reached steady state and maximum values after 120 h of operation.The results illustrate that mass transfer limitations exist not only for FTS reaction but also for the reduction and carburization steps which lead to various phase formation through catalyst activation.Also the results indicate that some effects of mass transfer limitations in activation step,can be compensated in the reaction step.The results can be used for better design of iron based catalyst to improve the process economy.
机译:以前已经报道了典型费-托合成过程中颗粒内传质限制的存在,但尚没有关于预处理步骤(还原和活化)下颗粒内扩散限制的存在及其对铁基催化剂催化性能的影响的适当研究。本研究采用共沉淀法制备了Fe-Cu-La-SiO2催化剂。研究了还原,活化和反应步骤下颗粒内传质的限制及其对催化性能的影响,研究了粒径为6,3的催化剂颗粒分别制备了1,1和0.5 mm。所有催化剂都在相似的条件下进行了煅烧,预处理和测试。催化剂在450℃的氢气中(5%H2在N2中)活化3 h,并暴露于合成气(H2 / CO = 1)在270℃和大气压下进行40 h。然后,进行FTS反应测试约120 h,以达到290℃,17 bar和进料流量(合成气H2 / CO = 1)速率下的稳态条件。 (STP)为3 L / h。与较大的颗粒相比,使用较小的颗粒可实现更高的CO转化率,FT反应速率和C5 +生产率。较小的颗粒在反应开始后仅20小时即可达到稳态条件。 CO转化,FT反应速率和C5 +生产率逐渐提高,并在运行120 h后达到稳态和最大值。结果表明,传质限制不仅存在于FTS反应中,而且存在于还原和渗碳步骤中,从而导致各种结果表明,活化步骤中传质限制的一些影响可以在反应步骤中得到补偿。该结果可用于更好地设计铁基催化剂,从而提高工艺经济性。

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