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Modeling the reactive processes within a catalytic porous medium

机译:模拟催化多孔介质中的反应过程

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A one-dimensional modelling approach to the reactive processes within a heated homogeneously premixed fuel-air mixture in its passage through a non-adiabatic catalytically reactive porous medium is described. The main focus of this contribution was comparison of the results obtained while using different modeling approaches that include mass diffusion to solid pores versus neglecting it; single step reaction versus detailed kinetic simulation; adiabatic versus non-adiabatic reactor operation; two different approaches accounting for radiation heat transfer. This model was tailored to our experimental results so as to obtain original kinetic data for corresponding global reactions for different types of catalysts and validate at the same time the predictive approaches. Results presented relate mainly to the fuels methane and hydrogen. It was shown that the employment of an 'effective thermal conductivity' to account for radiation heat transfer is adequate for producing satisfactory predictions while significantly cutting computational time. The use of multi-step reaction mechanisms produces results that are in good agreement with a much wider range of experimental data and does not require experimental data beforehand. It was also shown that a single-step reaction approach can be employed providing that corresponding kinetic data are derived from sufficient experimental data that need to be available for the same reactor and operational conditions. Then such simplified approach can be used to predict reasonably well the effect of operational parameters such as the feed inlet temperature and velocity. However, the use of such kinetic data for different operating conditions can lead to significantly erroneous results. It is shown that suitable catalytic beds can oxidize more fully and at lower temperatures very lean mixtures. Some of the results of the simulation using the model developed are shown to validate well against our own experimental results. Comparison of corresponding results obtained while employing overall single step reactions showed significant deviations from those of the more comprehensive multi-step reaction mechanism approach. The implication of applying the modelling approach to some practical applications is outlined.
机译:描述了一种在加热后均匀混合的燃料-空气混合物通过非绝热催化反应性多孔介质的过程中反应过程的一维建模方法。这一贡献的主要重点是比较使用不同建模方法(包括将质量扩散到固体孔中而不是忽略它)获得的结果;单步反应与详细的动力学模拟绝热与非绝热反应堆运行;两种解决辐射热传递的方法。该模型是针对我们的实验结果量身定制的,以便获得针对不同类型催化剂的相应全局反应的原始动力学数据,并同时验证预测方法。提出的结果主要涉及甲烷和氢气。结果表明,采用“有效导热率”来解决辐射传热就足以产生令人满意的预测结果,同时显着减少了计算时间。多步反应机制的使用产生的结果与更广泛的实验数据非常吻合,并且不需要事先获得实验数据。还表明,只要相应的动力学数据是从足够的实验数据中获得的,则可以采用单步反应方法,而对于相同的反应器和操作条件,这些实验数据必须是可用的。然后,可以使用这种简化方法合理地很好地预测操作参数(例如进料入口温度和速度)的影响。但是,对于不同的运行条件使用这种动力学数据可能会导致明显错误的结果。结果表明,合适的催化床可以更充分地氧化,并且在较低的温度下混合物非常稀薄。使用开发的模型进行的仿真结果显示,可以很好地验证我们自己的实验结果。使用整体单步反应获得的相应结果的比较表明,与更全面的多步反应机理方法相比,存在明显的偏差。概述了将建模方法应用于某些实际应用的含义。

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