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Selective oxidations in micro-structured catalytic reactors-For gas-phase reactions and specifically for fuel processing for fuel cells

机译:微结构催化反应器中的选择性氧化-用于气相反应,特别是用于燃料电池的燃料加工

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This review on selective oxidations is split into two parts.The first part concerns catalytic gas-phase oxidation reactions in micro-reactors,typically being performed in wall-coated micro-channels [V.Hessel,G.Kolb,J.C.Schouten,V.Cominos,C.Hofmann,H.Lowe,G.Nikolaidis,R.Zapf,A.Ziogas,E.R.Delsman,M.H.J.M.de Croon,O.de la Iglesia,R.Mallada,J.Santamaria,in:S.Ernst,E.Gallei,J.A.Lercher,Rossini,E.Santacesaria (Eds.),Conference pre-prints of the DGMK/SCI-Conference "Oxidation and Functionalization:Classical and Alternative Routes and Sources",Milan,Italy,October 12-14,2005 [1] (see also acknowledgements at the end of the article)].Liquid and gas-liquid oxidations are not included due to their different reactor design and way of processing.This comprises process development for fine chemical intermediates or bulk chemicals.By example of different reactions,the benefits of micro-chemical process engineering are shown.While there are numerous engineering reasons,one major driver is the increase of selectivity by diminishing side and follow-up reactions,most often the total oxidation to carbon dioxide,through preventing or at least decreasing hot spot formation.Another major advantage of micro-reactors is that mass-transfer resistances can be suppressed,thereby giving access to intrinsic kinetics.In the second part,we describe selective oxidation as one gas purification step in the framework of fuel processing for fuel cells,which is most often termed preferential oxidation in this context.Here,the selectivity towards carbon monoxide formation by diminishing the hydrogen oxidation is a major driver.The current developments are grouped so that all facets from kinetic modelling,heat transfer studies,catalyst testing,reactor and integrated-system engineering up to process engineering,exergy analysis,performance benchmarking and operation under real-case process flows are covered.
机译:关于选择性氧化的综述分为两部分。第一部分涉及微反应器中的气相催化氧化反应,通常在壁涂微通道中进行[V.Hessel,G.Kolb,JCSchouten,V。 Cominos,C.Hofmann,H.Lowe,G.Nikolaidis,R.Zapf,A.Ziogas,ERDelsman,MHJMde Croon,O.de la Iglesia,R.Mallada,J.Santamaria,in:S.Ernst,E .Gallei,JALercher,Rossini,E.Santacesaria(编),DGMK / SCI会议预印本,“氧化和功能化:经典和替代途径与来源”,意大利米兰,2005年10月12日至14日[1](另请参见文章末尾的致谢)。由于反应器设计和处理方式不同,因此不包括液体和气-液氧化。这包括精细化工中间体或散装化工的工艺开发。显示了不同化学反应的好处。虽然有许多工程上的原因,但其中一个主要的驱动因素是化学反应的增加。通过减少或至少减少热点的形成,减少副反应和后续反应(通常是将总氧化成二氧化碳)的选择性。微反应器的另一个主要优点是可以抑制传质阻力,从而可以在第二部分中,我们将选择性氧化描述为燃料电池燃料加工框架中的一种气体净化步骤,在此情况下,通常被称为优先氧化。在此,通过减少氧化生成一氧化碳的选择性氢氧化是主要驱动力。当前的发展归纳在一起,以便从动力学建模,传热研究,催化剂测试,反应器和集成系统工程到过程工程,火用分析,性能基准测试和实际案例操作中的所有方面流量被覆盖。

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