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首页> 外文期刊>Chemical Engineering & Technology: Industrial Chemistry -Plant Equipment -Process Engineering -Biotechnology >Reaction Engineering Simulation of Oxidative Coupling of Methane in a Circulating Fluidized-Bed Reactor
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Reaction Engineering Simulation of Oxidative Coupling of Methane in a Circulating Fluidized-Bed Reactor

机译:循环流化床反应器中甲烷氧化偶联反应的工程模拟

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摘要

Oxidative coupling of methane in a circulating fluidized bed (ID = 1 m, H = 20 m) was investigated by means of reaction engineering modeling and simulations. The hydrodynamics of the catalytic bed was described applying a two-phase (core and annulus) and two-zone (acceleration and fully developed flow) model. Chemical reactions were described by two separate networks for the heterogeneous and homogeneous reactions. The one for the heterogeneous stops was developed for a La_2O_3/CaO catalyst. Concentration profiles revealed that due to the high activity of the catalyst, almost complete conversion of oxygen was already obtained in the acceleration zone. Reactor performance was found to be strongly influenced by mass transport limitation between the core and annulus and by gas-phase reactions. The maximum C_(2+) yield of 13% (T = 800 ℃, X_(CH4) = 34.5%, S_(C2+) = 37.5%) was obtained at a high solids circulation rate (G_s = 800 kg/m~2 s) and a low methane-to-oxygen ratio (CH_4/O_2 = 3). The C_(2+) yields in the CFB are comparable to the ones predicted for an industrial-scale bubbling-bed reactor.
机译:通过反应工程建模和模拟研究了循环流化床(ID = 1 m,H = 20 m)中甲烷的氧化偶联。催化床的水动力学描述了使用两相(核心和环空)和两区(加速和充分发展的流动)模型。化学反应用两个独立的网络描述,用于异构反应和均相反应。针对La_2O_3 / CaO催化剂开发了一种用于非均相停止的催化剂。浓度曲线表明,由于催化剂的高活性,在加速区已经获得了几乎完全的氧气转化。已发现反应堆性能受到堆芯与环空之间的传质限制以及气相反应的强烈影响。在较高的固体循环速率下(G_s = 800 kg / m〜2),最高C_(2+)产率为13%(T = 800℃,X_(CH4)= 34.5%,S_(C2 +)= 37.5%)。 s)和低的甲烷/氧气比例(CH_4 / O_2 = 3)。 CFB中C_(2+)的产率与工业规模鼓泡床反应器的预测产率相当。

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