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Extinguishment of hydrogen diffusion flames by ultrafine water mist in a cup burner apparatus - A numerical study

机译:杯形燃烧器装置中超细水雾扑灭氢扩散火焰的数值研究

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Transient simulations with full hydrogen chemistry were performed to reveal the flame structure and extinguishment process of co-flow hydrogen diffusion flame suppressed by ultrafine water mist (UFM). As UFM was added incrementally to the oxidizer stream, the flame experienced a series of destabilization process, i.e., detachment, drifting and blow-off. The simulations predicted that the critical mass flow rate of 10-mu m UFM was 6 g/min, which is in agreement with the value calculated by a perfectly stirred reactor model and the value measured by the experiments. The critical mass flow rate exhibited a plateau region as the diameter increased from 5 gm to 20 gm. The optimal diameter for UFM was 10 mu m. A scrutiny on the extinguishing mechanisms reveals that both the chemical kinetic effect and latent heat play important roles in determining the optimal diameter in this configuration. For the chemical kinetic effect, water molecule inhibits the flame through 1) enhancing the chain-terminating reaction H + O-2 (+M) = HO2 (+M) and 2) subsequently scavenging free radicals in the flame. An energy equation was used to investigate the relative importance of extinguishing mechanisms for UFM. It shows that the thermal cooling outweighs the chemical kinetic effect in terms of contributions to flame inhibition although the chemical kinetic effect is obviously enhanced compared with N-2. Copyright (C) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:进行了全氢化学反应的瞬态模拟,以揭示超细水雾(UFM)抑制的并流氢扩散火焰的火焰结构和灭火过程。随着UFM逐步添加到氧化剂流中,火焰经历了一系列的不稳定过程,即分离,漂移和吹散。该模拟预测10μmUFM的临界质量流速为6 g / min,这与完全搅拌反应器模型计算出的值和实验测得的值相符。临界质量流量显示出随着直径从5 gm增加到20 gm的平稳区域。 UFM的最佳直径为10微米。对灭火机理的详细研究表明,在确定此构型的最佳直径时,化学动力学效应和潜热都起着重要作用。为了获得化学动力学效果,水分子通过1)增强链终止反应H + O-2(+ M)= HO2(+ M)和2)随后清除火焰中的自由基来抑制火焰。使用能量方程式研究了UFM灭火机制的相对重要性。结果表明,尽管与N-2相比,化学冷却效果明显增强,但热冷却对抑制火焰的贡献超过了化学搅拌效果。 Hydrogen Energy Publications,LLC版权所有(C)2015。由Elsevier Ltd.出版。保留所有权利。

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