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Transient ignition and combustion of diluted hydrogen/air mixtures by a thin catalytic wire

机译:细催化丝短暂燃烧和稀释氢气/空气混合物燃烧

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摘要

This paper reports on a study of transient ignition and combustion of hydrogen/air mixtures by a heated, thin catalytic wire in a natural convection environment. Modeling of the process is accomplished via a reduced set of heterogeneous kinetic processes which include dissociative adsorption and desorption of both reactants, three fast surface reactions of the Langmiur-Hinshelwood type, and the desorption reaction of the adsorbed product, H2O(s). The overall surface reaction rate is found to be limited by the adsorption rate of molecular oxygen, which depends on the concentration of molecular oxygen close to the surface of the wire and the distribution of empty sites in the catalyst. The analysis allows the determination of the critical conditions for ignition and the ignition delay time as a function of the important physicochemical parameters. The resulting wire temperatures and the critical value of the external heating rate at ignition are computed. The analysis shows how the ignition temperature increases as the external heating rate increases. The configuration dependence of the ignition temperature is taken as an indication that the use of a critical Damköhler number provides a better ignition condition than the ignition temperature concept. A self-sustained combustion regime for strong diluted mixtures is described.
机译:本文报道了在自然对流环境中通过加热的细催化丝对氢/空气混合物进行瞬时点火和燃烧的研究。该过程的建模是通过减少一组异质动力学过程完成的,这些过程包括两种反应物的解离吸附和解吸,Langmiur-Hinshelwood型的三个快速表面反应以及被吸附产物H2O的解吸反应。发现总的表面反应速率受到分子氧的吸附速率的限制,分子氧的吸附速率取决于靠近焊丝表面的分子氧的浓度和催化剂中空位的分布。该分析允许根据重要的理化参数确定点火的临界条件和点火延迟时间。计算所得的导线温度和点火时外部加热速率的临界值。分析表明,点火温度如何随着外部加热速率的增加而增加。点火温度与配置的相关性被认为是一个关键的Damköhler数比点火温度概念提供了更好的点火条件。描述了用于强稀释混合物的自持燃烧方案。

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