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Decision tree analysis of past publications on catalytic steam reforming to develop heuristics for high performance: A statistical review

机译:过去有关催化蒸汽重整以开发启发式方法以实现高性能的出版物的决策树分析:统计综述

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In this study, a database containing 5508 experimental data points was constructed for the steam reforming of methane using 81 papers (out of 453 initially screened) published between 2004 and 2014. The database was reviewed and analyzed with the help of decision trees to extract trends, heuristics and correlations, which are not visible to the naked eyes, through the vast experimental works accumulated in the literature over the years. The performance variable was selected as CH4 conversion while 21 variables related to catalyst preparation and operational conditions were used as input variables. It was found from a simple analysis of the literature that Ni, Rh, Ru and Pt are the most frequently used active metals, and they are generally applied over the supports of Al(2)0(3), CeO2 and ZrO2 usually using impregnation methods. A decision tree analysis was also applied to the database to determine the ranges of the catalyst preparation and operational conditions leading to high CH4 conversion. It was found for the Ni based catalysts that, even though the reaction temperature higher than 970 K is always required to achieve high CH4 conversion, some additional set of conditions are also needed; the combination of other variables especially support type and the feed composition seems to determine the catalytic performance. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在这项研究中,使用2004年至2014年间发表的81篇论文(最初筛选的453篇论文)构建了包含5508个实验数据点的甲烷蒸汽重整数据库。该数据库通过决策树进行了回顾和分析,以提取趋势。通过多年来在文献中积累的大量实验作品,可以发现肉眼看不到的启发式,启发式和相关性。选择性能变量作为CH4转化率,而将与催化剂制备和操作条件有关的21个变量用作输入变量。通过对文献的简单分析发现,Ni,Rh,Ru和Pt是最常用的活性金属,它们通常使用浸渍法涂覆在Al(2)0(3),CeO2和ZrO2的载体上方法。决策树分析还应用于数据库,以确定催化剂制备范围和导致高CH4转化的操作条件。对于镍基催化剂,发现即使为了达到高CH4转化率始终需要高于970 K的反应温度,也需要一些其他条件。其他变量(尤其是载体类型)和进料组成的结合似乎决定了催化性能。 (C)2016氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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