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Theory of first-stage ignition delay in hydrocarbon NTC chemistry

机译:碳氢化合物NTC化学中的第一阶段点火延迟理论

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The first-stage ignition delay of n-heptane/air mixtures is computationally studied using detailed mechanism and theoretically studied using eigenvalue analysis of simplified systems. Results show that the delay has a turnover behavior as temperature increases, being dominated by the competition of low temperature branching and termination channels as well as the competition of forward and reverse reaction channels. As temperature increases to the intermediate range, the termination and reverse pathways result in a minimum in the delay, the state of which is theoretically derived. Simple analytical solutions for the delay as well as the species evolutions are presented to identify the rate constants that control the first-stage ignition and quantify the influence of the mixture composition, initial temperature and system pressure. It is further demonstrated that the above results also hold for n-octane/air and iso-octane/air mixtures. (C) 2017 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:使用详细的机理对正庚烷/空气混合物的第一阶段点火延迟进行了计算研究,并使用简化系统的特征值分析对其进行了理论研究。结果表明,该延迟具有随温度升高而变化的行为,主要受低温分支和终止通道的竞争以及正向和反向反应通道的竞争的影响。当温度升高到中间范围时,终止和反向路径会导致延迟最小化,从理论上可以得出其状态。提出了用于延迟以及物种演化的简单分析解决方案,以识别控制第一阶段点火的速率常数,并量化混合物成分,初始温度和系统压力的影响。进一步证明,以上结果对于正辛烷/空气和异辛烷/空气混合物也成立。 (C)2017燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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