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SELECTIVE SYNTHESIS OF MALEIC ANHYDRIDE BY SPATIAL SEPARATION OF N-BUTANE OXIDATION AND CATALYST REOXIDATION

机译:N-丁烷氧化和催化剂重氧化的空间分离选择性合成马来酸酐

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The selective oxidation and ammoxidation of hydrocarbons in fixed-bed or fluidized-bed reactors is conventionally characterized by the simultaneous presence of oxygen gas and hydrocarbon vapor at the active sites of the catalyst. In order to increase the selectivity it has been suggested (Sze and Gelbein, 1976; Contractor and Sleight, 1987; Contractor, 1988) to separate the reaction into two parts; i.e. a first step where the catalyst chemisorbs oxygen and a second step, where the oxidized catalyst reacts with the hydrocarbons. In the present work this concept has been tested on the laboratory scale. The oxidation of n-butane to maleic anhydride (MA) has been taken as an example. The reaction step was carried out in a riser of a circulating fluidized bed, the solids return line of which was used to implement a regenerator fluidized bed for the reoxidation step. A model of this reactor has been developed which takes the oxygen loading on the catalyst particles into account. Scale up calculations show that high solids circulation rates are necessary which, in turn, demand a high attrition-resistance of the catalyst. Copyright (C) 1997 Elsevier Science Ltd. [References: 16]
机译:固定床或流化床反应器中烃的选择性氧化和氨氧化通常以在催化剂的活性部位同时存在氧气和烃蒸气为特征。为了提高选择性,有人提出将反应分为两部分(Sze和Gelbein,1976; Contractor和Sleight,1987; Contractor,1988)。即第一步,催化剂化学吸附氧,第二步,氧化的催化剂与碳氢化合物反应。在目前的工作中,已经在实验室规模上对该概念进行了测试。以正丁烷氧化为马来酸酐(MA)为例。该反应步骤在循环流化床的提升管中进行,该循环流化床的固体返回管线用于实现用于再氧化步骤的再生器流化床。已经开发了该反应器的模型,该模型考虑了催化剂颗粒上的氧负载。放大计算表明,高固体循环速率是必需的,这反过来又要求催化剂具有高耐磨耗性。版权所有(C)1997 Elsevier Science Ltd [参考:16]

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