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Design of Catalytic Devices by Means of Genetic Algorithm: Comparison Between Open-Cell Foam and Honeycomb Type Substrates

机译:遗传算法催化装置的设计:开放式电池泡沫和蜂窝型衬底的比较

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Metallic foams or sponges are materials with a cell structure suitable for many industrial applications, such as reformers, heat catalytic converters, etc. The success of these materials is due to the combination of various characteristics such as mechanical strength, low density, high specific surface, good thermal exchange properties, low flow resistance and sound absorption. Different materials and manufacturing processes produce different type of structure and properties for various applications. In this work a genetic algorithm has been developed and applied to support the design of catalytic devices. In particular, two substrates were considered, namely the traditional honeycomb and an alternative open-cell foam type. CFD simulations of pressure losses and literature based correlations for the heat and mass transfer were used to support the genetic algorithm in finding the best compromise between flow resistance and pollutant abatement. The CFD analysis was conducted by means of numerical simulations carried out on a geometry sample obtained by the micro-tomography technique to investigate the flow regime type and to extract pressure drop information. The result of this analysis was used to set guideline for the design of foam type substrate and to provide a first estimation of cost effectiveness of new type of substrates.
机译:金属泡沫或海绵是具有适用于许多工业应用的电池结构的材料,例如重整器,热催化转化器等。这些材料的成功是由于各种特性,诸如机械强度,低密度,高比表面的组合,良好的热交换特性,低流量和吸声。不同的材料和制造工艺为各种应用产生不同类型的结构和性质。在这项工作中,已经开发出遗传算法并应用于支持催化装置的设计。特别地,考虑了两种底物,即传统的蜂窝和替代的开放式泡沫型。 CFD模拟的压力损失和用于热量和传质的文献相关性用于支持遗传算法在流动性和污染物减少之间找到最佳折衷。通过在通过微型层析技术获得的几何样本上进行的数值模拟进行CFD分析,以研究流动方案类型并提取压力下降信息。该分析的结果用于设定泡沫型衬底设计的指南,并提供新型基板的成本效益的首次估计。

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