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The use of CO2 as an additive for ignition delay and pollutant control in CH4/air autoignition

机译:在CH4 /空气自动点火中使用CO2作为添加剂来延迟点火和控制污染物

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摘要

The effect of CO2 dilution on the adiabatic and isochoric autoignition of CH4/air mixtures is analyzed with Computational Singular Perturbation (CSP) algorithmic tools, with a particular emphasis on the determination of the features of the chemical dynamics that control ignition delay and emission formation. Increasing CO2 dilution causes longer ignition delays, lower final temperatures and decreased formation of NO and CO. These effects of CO2 dilution are shown to be entirely thermal, contrary to what happens with dilution with H2O, which also has chemical activity and can reduce ignition delay. For the same initial mole fraction of the diluent, the decrease in final temperature and in NO concentration is larger in the CO2 case whereas the decrease in CO is larger in the H2O case. The thermal effect of CO2 is entirely analogous with those of dilution with the chemically inert Ar, only stronger for the same percentage of initial dilution, because of the larger specific heat of CO2. The reactions that have the largest contribution to the characteristic explosive time scale of the system during ignition delay (H2O2( + M) -> OH + OH( + M), CH3O2 + CH2O -> CH3O2H + HCO, CH4 + CH3O2 -> CH3 + CH3O2H, H + O-2 -> O + OH, etc.) are not substantially affected by CO2 dilution, neither are the species that are pointed by CSP (CH3O2, H2O2, CH2O, etc.) as having the largest impact on the this timescale. The same holds for the modes that control CO and NO formation. The results point to the possibility of cold exhaust gas recirculation being used in order to produce mixtures with longer ignition delays and therefore substantial resistance to uncontrolled ignition.
机译:使用计算奇异摄动(CSP)算法工具分析了CO2稀释对CH4 /空气混合物的绝热和等速自燃的影响,特别着重于确定控制点火延迟和排放形成的化学动力学特征。增加CO2稀释会导致更长的点火延迟,更低的最终温度以及减少NO和CO的形成。事实证明,CO2稀释的这些作用完全是热的,与H2O稀释相反,后者也具有化学活性并可以减少点火延迟。对于相同的稀释剂初始摩尔分数,在CO2情况下,最终温度和NO浓度的下降较大,而在H2O情况下,CO的下降较大。 CO2的热效应完全类似于用化学惰性Ar进行稀释的热效应,仅在相同百分比的初始稀释下更强,因为CO2的比热更大。在点火延迟期间对系统的特征爆炸时间尺度有最大贡献的反应(H2O2(+ M)-> OH + OH(+ M),CH3O2 + CH2O-> CH3O2H + HCO,CH4 + CH3O2-> CH3 + CH3O2H,H + O-2-> O + OH等)基本上不受CO2稀释的影响,CSP指出的物种(CH3O2,H2O2,CH2O等)对其影响也最大这个时间表。控制CO和NO形成的模式也一样。结果表明,可能使用冷废气再循环以产生具有较长点火延迟的混合物,因此具有对不受控制的点火的显着抵抗力。

著录项

  • 来源
    《Fuel》 |2018年第1期|898-905|共8页
  • 作者单位

    KAUST, CCRC, Jeddah 239556900, Saudi Arabia;

    KAUST, CCRC, Jeddah 239556900, Saudi Arabia;

    Khalifa Univ Sci & Technol, Dept Mech Engn, Abu Dhabi 127788, U Arab Emirates;

    Khalifa Univ Sci & Technol, Dept Mech Engn, Abu Dhabi 127788, U Arab Emirates|Natl Tech Univ Athens, Dept Mech, Sch Appl Math & Phys Sci, Athens 15780, Greece;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Autoignition; NO; Methane; CSP;

    机译:自燃;NO;甲烷;CSP;

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