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Kinetic Study of Catalytic Hydrogenation of O-Nitroanisole to O-Anisidine in a Microchannel Reactor

机译:微通道反应器O-硝基吲哚催化加氢对邻硝基乙胺的动力学研究

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Hydrogenation reactions are ubiquitous in the fine chemicals and pharmaceutical industries. The hydrogenation of o-nitroanisole to o-anisidine in methanol was selected as a model three-phase reaction for kinetics study in a packed-bed microchannel reactor using Pd metal supported on zeolite as a catalyst. The kinetics of three-phase hydrogenation reactions in conventional slurry or batch reactors is often limited by mass transfer of hydrogen through the liquid due to the limited solubility of hydrogen in organic substrates and solvents. These reactions are also highly exothermic, therefore adequate temperature control is of primary importance to reduce side reactions and to prevent thermal runaway conditions. The use of a microchannel reactor for such reactions provides improved mass and heat transfer rates which may ensure that the reaction operates close to intrinsic kinetics. In the present study, the rate data in the intrinsic kinetic regime were analyzed and found to be well represented by L-H type rate equations. Kinetic experiments were also conducted in a semi-batch reactor under similar reaction conditions as the microchannel reactor. The performance of the packed bed microchannel reactor was compared to that of the semi-batch reactor by evaluating the mass transfer resistance in each system.
机译:氢化反应在精细化学品和制药行业中普遍存在。选择甲醇中O-硝基吲哚至O-氨基乙胺的氢化作为沸石在沸石上负载的Pd金属作为催化剂的填充床微通道反应器中的动力学研究的三相反应。在常规浆料或间歇式反应器中三相氢化反应的动力学通常通过液体通过液体传质由于氢在有机基材和溶剂中的限制性而受到限制。这些反应也是高度放热的,因此足够的温度控制是重视副反应并防止热失控条件的主要重要性。用于这种反应的微通道反应器提供了改善的质量和传热速率,其可以确保反应靠近固有动力学。在本研究中,分析了内在动力学制度中的速率数据,发现由L-H型速率方程表示良好。在与微通道反应器类似的反应条件下也在半批量反应器中进行动力学实验。通过评估每个系统中的传质电阻,将包装床微通道反应器的性能与半批量反应器的性能进行了比较。

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