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Performance limits of isothermal packed bed and perforated monolithic bed reactors operated under laminar flow conditions. I. General optimization analysis

机译:在层流条件下运行的等温填充床和多孔整体床反应器的性能极限。一,一般优化分析

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A global optimization analysis of a general class of perforated monolithic bed reactors is presented for the case of an isothermal first-order reaction and for laminar flow conditions. The resulting design rules indicate how a given amount of catalyst material should best be perforated or distributed in space as a function of the available inlet pressure. It is shown that the influence of the different process variables (k, DeltaP, V-cata, C-in/C-out, D-mol, S-reac) on the reactor productivity and on the optimal bed design can be grouped into a single dimensionless number E. This number also allows to discuss the sensitive relation between the total and the volumetric productivity of single bed reactors in a very general, compact manner. Two different perforated monolithic bed designs, a slit pore bed (SPB) and a cylindrical pore bed (CPB) are considered. It is found that, when there is an excess inlet pressure (i.e., for E much less than 1), the optimal catalyst layer thickness is given by phi = 0.3-0.5 and that the optimal pore diameter is in both cases 1.4-1.45 times smaller than the catalyst layer, independently of the internal catalyst diffusivity (D-int) and the other process variables. When the available inlet pressure is limiting (E > 10(-4)), and when the absolute reactor productivity is more important than the volumetric productivity, it is found that much more open structures, with much wider pores are needed, i.e., perforated beds show the same behavior as packed beds, where the occurrence of a pressure-drop limitation also induces a shift from the use of full particles to the use of hollow extrudates. (C) 2003 Elsevier Ltd. All rights reserved. [References: 25]
机译:针对等温一阶反应和层流条件,对一般类型的多孔整体床反应器进行了全局优化分析。产生的设计规则表明如何根据可用的入口压力最好地在给定数量的催化剂材料上进行穿孔或分配。结果表明,可以将不同工艺变量(k,DeltaP,V-cata,C-in / C-out,D-mol,S-reac)对反应器生产率和最佳床设计的影响分为以下几类:一个单一的无量纲数E。该数字还允许以一种非常普遍,紧凑的方式讨论单床反应器的总生产率与体积生产率之间的敏感关系。考虑了两种不同的多孔整体床设计,狭缝孔床(SPB)和圆柱形孔床(CPB)。发现,当入口压力过大时(即,E远小于1),最佳催化剂层厚度由phi = 0.3-0.5给出,两种情况下的最佳孔径均为1.4-1.45倍小于催化剂层,独立于内部催化剂扩散率(D-int)和其他工艺变量。当可用的入口压力受到限制时(E> 10(-4)),并且当绝对反应器的生产率比体积的生产率更重要时,发现需要更多的开放结构,孔要宽得多,即穿孔床表现出与填充床相同的行为,其中压降限制的发生还引起了从使用全颗粒到使用中空挤出物的转变。 (C)2003 Elsevier Ltd.保留所有权利。 [参考:25]

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