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首页> 外文期刊>International journal of hydrogen energy >Design Of A Methane Processing System Producing High-purity Hydrogen
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Design Of A Methane Processing System Producing High-purity Hydrogen

机译:产高纯氢甲烷处理系统的设计

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Design of a catalytic methane-to-proton exchange membrane fuel cell (PEMFC) grade hydrogen conversion system consisting of indirect partial oxidation (IPOX), water-gas shift (WGS) and preferential carbon monoxide oxidation (PROX) reactors is investigated using modeling and simulation techniques. Steady-state simulation, design and sizing of reactors, which are considered to be packed-bed tubular type, are carried out for twelve different feed composition and PEMFC power output configurations, namely (CH_4/O_2, H_2O/ CH_4) = (2.24, 1.17), (1.89, 1.56) and (10, 50, 100, 500, 1000, 1500 W). For every configuration, material balance calculations are executed to obtain the flow rates of each species at each stream. These results are then used as boundary conditions to estimate the catalyst weights in each reactor via simulations conducted using a one-dimensional pseudo-homogeneous reactor model. Finally, reactor and catalyst particle dimensions are estimated by considering pressure drop and a set of criteria to quantify interfacial heat and intraparticle mass transfer resistances and fluid flow characteristics in packed beds. The total catalyst quantity is found to increase almost linearly with the PEMFC power output at both feed compositions. Total system volume, excluding piping, pumping, heat exchange and other peripheral units, is estimated to be 6.3,40.3, 83.4,488, 985 and 1527 cm3 for 10, 50, 100, 500, 1000 and 1500 W operations, respectively. WGS unit requires the highest space corresponding to ca. 50% of the total reactor volume, followed by IPOX (ca. 39%) and PROX (ca. 11%) reactors. Power densities, based on the weight and volume of the reactors are estimated as 1.1 kW/kg and 1.2 kW/l, respectively.
机译:利用建模和研究方法研究了由间接部分氧化(IPOX),水煤气变换(WGS)和优先一氧化碳氧化(PROX)反应器组成的催化甲烷-质子交换膜燃料电池(PEMFC)级氢转化系统的设计。模拟技术。对于十二种不同的进料组成和PEMFC功率输出配置,即(CH_4 / O_2,H_2O / CH_4)=(2.24, 1.17),(1.89、1.56)和(10、50、100、500、1000、1500 W)。对于每种配置,都执行物料平衡计算,以获取每种物流中每种物质的流速。然后,通过使用一维拟均相反应器模型进行的模拟,将这些结果用作边界条件,以估计每个反应器中的催化剂重量。最后,通过考虑压降和一组标准来估算反应器和催化剂的颗粒尺寸,以量化填充床中的界面热和颗粒内传质阻力以及流体流动特性。发现在两种进料组合物中,总催化剂量几乎随PEMFC功率输出线性增加。对于10 W,50 W,100 W,500 W,1000 W和1500 W的运行,不包括管道,泵,热交换和其他外围设备在内的系统总体积分别估计为6.3、40.3、83.4、488、985和1527 cm3。 WGS单元需要的最大空间对应于ca。总反应器体积的50%,其次是IPOX(约39%)和PROX(约11%)反应器。基于反应堆的重量和体积的功率密度分别估计为1.1 kW / kg和1.2 kW / l。

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