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An Experimental Approach on Industrial Pd-Ag Supported α-Al2O3 Catalyst Used in Acetylene Hydrogenation Process: Mechanism, Kinetic and Catalyst Decay

机译:乙炔氢化工艺中使用的工业PD-AG支持α-Al2O3催化剂的实验方法:机理,动力学和催化剂腐烂

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摘要

The current research presents an experimental approach on the mechanism, kinetic and decay of industrial Pd-Ag supported α-Al2O3 catalyst used in the acetylene hydrogenation process. In the first step, the fresh and deactivated hydrogenation catalysts are characterized by XRD, BET (Brunauer–Emmett–Teller), SEM, TEM, and DTG analyses. The XRD results show that the dispersed palladium particles on the support surface experience an agglomeration during the reaction run time and mean particle size approaches from 6.2 nm to 11.5 nm. In the second step, the performance of Pd-Ag supported α-Al2O3 catalyst is investigated in a differential reactor in a wide range of hydrogen to acetylene ratio, temperature, gas hourly space velocity and pressure. The full factorial design method is used to determine the experiments. Based on the experimental results ethylene, ethane, butene, and 1,3-butadiene are produced through the acetylene hydrogenation. In the third step, a detailed reaction network is proposed based on the measured compounds in the product and the corresponding kinetic model is developed, based on the Langmuir-Hinshelwood-Hougen-Watson approach. The coefficients of the proposed kinetic model are calculated based on experimental data. Finally, based on the developed kinetic model and plant data, a decay model is proposed to predict catalyst activity and the parameters of the activity model are calculated. The results show that the coke build-up and condensation of heavy compounds on the surface cause catalyst deactivation at low temperature.
机译:目前研究呈现了在乙炔氢化过程中使用的工业PD-AG支持的α-Al2O3催化剂的机理,动力学和腐烂的实验方法。在第一步中,新鲜和失活的氢化催化剂的特征在于XRD,BET(Brunauer-Emmett-Teller),SEM,TEM和DTG分析。 XRD结果表明,支撑表面上的分散的钯颗粒在反应时间期间经历附聚并在6.2nm至11.5nm的平均粒度接近。在第二步中,在宽范围的氢气中,在差分反应器中研究Pd-Ag负载α-Al 2 O 3催化剂的性能,以乙炔比,温度,气体小时空速和压力。完整的因子设计方法用于确定实验。基于实验结果,通过乙炔氢化制备乙烯,乙烷,丁烯和1,3-丁二烯。在第三步中,基于产品中的测量化合物提出了一种详细的反应网络,基于Langmuir-Hinshelwood-Hougen-Watson方法,开发了相应的动力学模型。基于实验数据计算所提出的动力学模型的系数。最后,基于开发的动力学模型和植物数据,提出了一种衰变模型来预测催化剂活性,并且计算活动模型的参数。结果表明,在低温下,表面上的焦炭积聚和重质化合物的缩合会导致催化剂失活。

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