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首页> 外文期刊>Fuel Processing Technology >Modeling of diffusion and reaction in monolithic catalysts for the methanol-to-propylene process
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Modeling of diffusion and reaction in monolithic catalysts for the methanol-to-propylene process

机译:甲醇制丙烯过程中整体催化剂中扩散和反应的建模

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摘要

The present paper gives an insight into the methanol conversion to propylene (MTP) performance in a monolith reactor by means of a two-dimensional adiabatic heterogeneous reactor model accounting for interfacial and intra-particle gradients. Interactions of mass and heat transfer and chemical reactions were taken into account within monolith channels and inside the channel walls. Concentration and temperature profiles in both radial and axial direction were calculated for a multiple-stage monolithic reactor simulating the MTP process with special focus to influence of monolith channel geometries on selectivity of propylene. Calculated results showed that the total yield of light C2-C4 olefins can be achieved high up to 71%, with that of propylene up to 49% by a selected monolith structure of 400 cells per square inch with a 0.2 mm catalytic wall thickness. Thus, the monolithic catalyst with high cell density and thin walls is recommended for the MTP process.
机译:本文通过考虑界面和颗粒内梯度的二维绝热非均相反应器模型,对整体反应器中甲醇转化为丙烯(MTP)的性能进行了深入研究。在整体通道内和通道壁内考虑了质量,热传递和化学反应的相互作用。为模拟MTP过程的多级整体式反应器,计算了径向和轴向的浓度和温度分布,并特别关注整体式通道的几何形状对丙烯选择性的影响。计算结果表明,通过选择每平方英寸400个单元,催化壁厚度为0.2的整体单元,轻质C2-C4烯烃的总收率可以高达71%,而丙烯的总收率则高达49%。因此,推荐将具有高泡孔密度和薄壁的整体催化剂用于MTP工艺。

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