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On initiation reactions of acetylene oxidation in shock tubes A quantum mechanical and kinetic modeling study

机译:激波管中乙炔氧化引发反应的量子力学和动力学建模研究

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Reaction between acetylene and molecular oxygen was analyzed using quantum mechanical calculations and kinetic modeling of acetylene oxidation in shock tubes. Calculations at the G2(B3LYP) level of theory show that the direct attack of molecular oxygen on the #pi# bond in acetylene has a larger energy barrier than acetylene reversible vinylidene isomerization, such that this isomerization followed by the reaction of vinylidene with molecular oxygen is the energetically favorable initiation reaction of acetylene oxidation. It is further shown that detailed kinetic models of acetylene oxidation including this initiation process predict well the experimental shock tube ignition delay data.
机译:使用量子力学计算和震荡管中乙炔氧化的动力学模型分析了乙炔与分子氧之间的反应。在理论的G2(B3LYP)级别进行的计算表明,与乙炔可逆的亚乙烯基异构化相比,分子氧对乙炔中#pi#键的直接攻击具有更大的能垒,因此该异构化随后是亚乙烯基与分子氧的反应是乙炔氧化在能量上有利的引发反应。进一步表明,包括该引发过程在内的详细的乙炔氧化动力学模型可以很好地预测实验激波管点火延迟数据。

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