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Numerical study of flow distribution uniformity for the optimization of gradient porosity configuration of porous copper fiber sintered felt for hydrogen production through methanol steam reforming micro-reactor

机译:甲醇蒸汽重整微反应器制氢用多孔铜纤维烧结毡优化梯度孔隙构型的流量分布均匀性数值研究

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摘要

A macroscopic numerical method is proposed to study the flow distribution uniformity of a novel porous copper fiber sintered felt (PCFSF), which has gradient porosities and was developed as the methanol steam reforming micro-reactor catalyst support for hydrogen production for fuel cell applications. The macroscopic porous media developed by the ANSYS/FLUENT software is used to represent the PCFSF. Our results indicate that the gradient porosity can reshape the flow distribution of PCFSFs greatly, thus producing significant influence on their performance. It is further revealed that, for a PCFSF with a determined gradient porosity configuration but different reactant feed directions, the velocity uniformity can be used as a quantitative criterion to evaluate the performance of hydrogen production. Furthermore, new gradient PCFSFs are produced according to the flow distribution of original gradient PCFSFs. The preliminary experimental results of the new gradient PCFSFs of 0.8-0.9-0.7 and 0.7-0.9-0.8 exhibit better methanol conversion and H-2 flow rate. This indicates that the numerical method can be used for the optimization of PCFSFs' gradient porosity configuration, which consists of the shape and position of the interfaces between different porosity portions, the number of interfaces and the porosity distribution in different portions. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:提出了一种宏观数值方法来研究新型多孔铜纤维烧结毡(PCFSF)的流动分布均匀性,该多孔毡具有梯度孔隙率,并被开发为甲醇蒸汽重整微反应器催化剂载体,用于燃料电池制氢。由ANSYS / FLUENT软件开发的宏观多孔介质用于表示PCFSF。我们的结果表明,梯度孔隙度可以极大地重塑PCFSF的流量分布,从而对其性能产生重大影响。进一步揭示出,对于具有确定的梯度孔隙率构型但反应物进料方向不同的PCFSF,速度均匀性可以用作评估氢生产性能的定量标准。此外,根据原始梯度PCFSF的流量分布,将生成新的梯度PCFSF。 0.8-0.9-0.7和0.7-0.9-0.8的新梯度PCFSF的初步实验结果显示出更好的甲醇转化率和H-2流速。这表明该数值方法可用于PCFSFs梯度孔隙度结构的优化,该方法由不同孔隙度部分之间界面的形状和位置,界面数和不同部位的孔隙度分布组成。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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