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首页> 外文期刊>Journal of Catalysis >Steam reforming of methanol over Cu/ZrO_2/CeO_2 catalysts:a kinetic study
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Steam reforming of methanol over Cu/ZrO_2/CeO_2 catalysts:a kinetic study

机译:Cu / ZrO_2 / CeO_2催化剂上甲醇水蒸气重整反应的动力学研究

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Steam reforming of methanol (SRM) was investigated over Cu/ZrO_2/CeO_2 (CZC) catalysts prepared via a novel synthetic method based on coprecipitation and polymer templating.Structural characterization of the samples was performed by N_2 adsorption-desorption,N_2O decomposition,and X-ray diffraction.The variation of the Cu loading resulted in an increased Cu crystallite size and a decreased specific surface area of the active particles.Catalytic investigations were carried out in a fixed-bed reactor at 10~5 Pa,with a CH_3OH:H_2O ratio of 1:1.The samples with Cu contents higher than 5% exhibited good long-term stabilities and low CO levels during continuous operation.The kinetic model suggested for the transformation involved the reverse water-gas shift (RWGS) and methanol decomposition (MD),in addition to the SRM reaction.Kinetic measurements were made in the temperature range of 503-573 K,and the experimental results could be well simulated.The highest methanol conversions and the lowest CO levels were observed in the temperature range of 523-543 K.The apparent activation energies for the individual reactions were found to depend on the Cu content of the catalyst.Since the influence of mass transport limitations on the kinetic data could be excluded,it was established that the variation of the Cu concentration in the precursor material altered the microstructure of the Cu particles and,accordingly,the active Cu surface,which resulted in the formation of significantly different catalysts.
机译:在共沉淀和聚合物模板的基础上,采用新型合成方法制备的Cu / ZrO_2 / CeO_2(CZC)催化剂,研究了甲醇的水蒸气重整.N_2吸附-解吸,N_2O分解和X射线衍射.Cu含量的变化导致Cu晶粒尺寸增加,活性颗粒的比表面积减小。在CH_3OH:H_2O的固定床反应器中于10〜5 Pa进行催化研究Cu含量高于5%的样品在连续操作过程中表现出良好的长期稳定性和低CO含量。该转化的动力学模型涉及水蒸气的反向转化(RWGS)和甲醇分解(除了SRM反应外,还可以在503-573 K的温度范围内进行动力学测量,并且可以很好地模拟实验结果。在523-543 K的温度范围内观察到了CO的水平。发现各个反应的表观活化能取决于催化剂中的Cu含量。由于可以排除传质限制对动力学数据的影响,已经确定,前体材料中铜浓度的变化改变了铜颗粒的微观结构,从而改变了活性铜的表面,从而导致形成了明显不同的催化剂。

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