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        Multiscale modeling of heterogeneous catalysis in porous metal foam structures using particle-based simulation methods

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        Author(s)
        Mühlbauer, Sebastian J.
        Collection
        AG Universitätsverlage
        Language
        English
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        Abstract
        In this work, we investigate and optimize heterogeneous catalysis in porous metal foams. First, we consider the gas dynamics together with the reaction and diffusion processes in individual foam pores on the mesoscale. Second, we condense the detailed simulation results on the mesoscale to relations between few, dimensionless numbers. Based on these relations, we follow a multiscale approach to derive an efficient, one-dimensional, macroscale model for metal foam filled catalytic converters. Due to its industrial relevance, we focus on the mass transfer limited regime. Finally, we develop a simple recipe to determine optimum pore size configurations. For realistic heat release values, the heat transfer out of the catalytic converter is critical. We show hat, in order to keep temperature fluctuations small, the optimum configuration consists of several, stacked foam segments with decreasing pore size along the main flow direction. For typical parameters, we observe that, compared to foam with constant pore size, the trade-off between chemical conversion and flow resistance can be increased significantly, while the required reactive surface area, i.e., the needed amount of catalytic material, is reduced substantially.
        URI
        https://library.oapen.org/handle/20.500.12657/105761
        Keywords
        heterogeneous catalysis; porous media; computational fluid dynamics; multiscale; metal foam; mass transfer; optimization
        DOI
        10.25593/978-3-96147-263-5
        ISBN
        9783961472635, 9783961472635, 9783961472628
        Publisher
        FAU University Press
        Publisher website
        https://www.university-press.fau.de/
        Publication date and place
        Erlangen, 2020
        Series
        FAU Forschungen : Reihe B, 30
        Classification
        Process engineering technology and techniques
        Pages
        90
        Rights
        https://creativecommons.org/licenses/by/4.0
        • Imported or submitted locally

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        License

        • If not noted otherwise all contents are available under Attribution 4.0 International (CC BY 4.0)

        Credits

        • logo EU
        • This project received funding from the European Union's Horizon 2020 research and innovation programme under grant agreement No 683680, 810640, 871069 and 964352.

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