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Novel circulating fast fluidized-bed membrane reformer for efficient production of hydrogen from steam reforming of methane

机译:新型循环快速流化床膜重整器,可通过甲烷蒸汽重整有效生产氢气

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The coupling of steam reforming and oxidative reforming of methane for the efficient production of hydrogen is investigated over Ni/Al2O3 catalyst in a novel circulating fast fluidized-bed membrane reformer (CFFBMR) using a rigorous mathematical model. The removal of product hydrogen using palladium hydrogen membranes "breaks" the thermodynamic equilibrium barrier exists among the reversible reactions. Oxygen can be introduced into the adiabatic CFFBMR for oxidative reforming by direct oxygen (or air) feed and through dense perovskite oxygen membranes. The simulations show that high productivity of hydrogen can be obtained in the CFFBMR. The combination of these two different processes does not only enhance the hydrogen productivity but also save the energy due to the exothermicity of the oxidative reforming. Based on the preliminary investigations, four parameters (number of hydrogen membranes, number of oxygen membranes, direct oxygen feed rate and steam-to-carbon feed ratio) are carefully chosen as main variables for the process optimization. The optimized result shows that the hydrogen productivity (moles of hydrogen produced per hour per in 3 of reactor) in the novel CFFBMR is about 8.2 times higher than that in typical industrial fixed-bed steam reformers. (C) 2003 Elsevier Ltd. All rights reserved. [References: 40]
机译:使用严格的数学模型,在新型循环快速流化床膜重整器(CFFBMR)中,在Ni / Al2O3催化剂上研究了甲烷的蒸汽重整和氧化重整的耦合,以有效地生产氢气。使用钯氢膜去除产物氢会“打破”可逆反应之间存在的热力学平衡壁垒。可以通过直接供氧(或空气)进料并通过致密的钙钛矿型氧膜将氧气引入绝热CFFBMR中进行氧化重整。仿真表明,在CFFBMR中可以获得高产氢。这两种不同方法的结合不仅提高了氢气生产率,而且由于氧化重整的放热性而节省了能量。在初步研究的基础上,精心选择了四个参数(氢膜数量,氧膜数量,直接氧气进料速率和蒸汽/碳进料比)作为工艺优化的主要变量。优化结果表明,新型CFFBMR的氢气生产率(每小时每3个反应器每小时产生的氢气摩尔数)比典型的工业固定床蒸汽重整器高约8.2倍。 (C)2003 Elsevier Ltd.保留所有权利。 [参考:40]

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