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Effects of strain rate and CO2 on no formation in CH4/N2/O2 counter-flow diffusion flames

机译:应变速率和CO2对CH4 / N2 / O2逆流扩散火焰中无形成的影响

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The reduction of nitrogen oxides in the high temperature flame is the key factor affecting the oxygen-enriched combustion performance. A numerical study using an OPPDIF code with detailed chemistry mechanism GRI 3.0 was carried out to focus on the effect of strain rate (25-130 s–1) and CO2 addition (0-0.59) on the oxidizer side on NO emission in CH4 / N2 / O2 counter-flow diffusion flame. The mole fraction profiles of flame structures, NO, NO2 and some selected radicals (H, O, OH) and the sensitivity of the dominant reactions contributing to NO formation in the counter-flow diffusion flames of CH4/ N2 /O2 and CH4 / N2 / O2 / CO2 were obtained. The results indicated that the flame temperature and the amount of NO were reduced while the sensitivity of reactions to the prompt NO formation was gradually increased with the increasing strain rate. Furthermore, it is shown that with the increasing CO2 concentration in oxidizer, CO2 was directly involved in the reaction of NO consumption. The flame temperature and NO production were decreased dramatically and the mechanism of NO production was transformed from the thermal to prompt route.
机译:高温火焰中氮氧化物的还原是影响富氧燃烧性能的关键因素。进行了使用带有详细化学机理GRI 3.0的OPPDIF代码的数值研究,重点研究了氧化剂侧的应变速率(25-130 s–1)和CO2添加(0-0.59)对CH4 / NO排放的影响。 N2 / O2逆流扩散火焰。火焰结构,NO,NO2和一些选定的自由基(H,O,OH)的摩尔分数分布以及对CH4 / N2 / O2和CH4 /的逆流扩散火焰形成NO的主要反应的敏感性获得了N2 / O2 / CO2。结果表明,随着应变速率的增加,火焰温度和NO含量降低,而对迅速生成NO的反应敏感性逐渐提高。此外,表明随着氧化剂中CO 2浓度的增加,CO 2直接参与NO消耗的反应。火焰温度和NO生成量急剧下降,NO生成机理从热途径转变为迅速途径。

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