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Dynamics Analysis of a Turbulent Methane Flame in MILD Combustion Conditions

机译:轻度燃烧条件下甲烷湍流动力学分析

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The dominant physical processes that characterize the combustion of a lean methane/air mixture, diluted with exhaust gas recirculation (EGR), under turbulent MILD premixed conditions are identified using the combined approaches of Computational Singular Perturbation (CSP) and Tangential Strech Rate (TSR) which identifies the driving processes of the system dynamics. The important modes that contribute the most to the TSR are identified and the competition between the processes that oppose to or promote the action of each mode is studied. Two important modes are found to compete for the largest part of the domain, one of explosive character and one of dissipative nature. This competition mostly favors the dissipative modes, suggesting that the system's dynamics is predominantly dominant. It was also found that the key processes that trigger this competition are hydrogen-related reactions introduced by the explosive mode and carbon-related reactions introduced by dissipative modes. Furthermore, it was also found that the chemical activity of the explosive modes is enhanced by transport processes, in particular convective processes, despite their dissipative nature.
机译:使用计算奇异摄动(CSP)和切向拉伸率(TSR)的组合方法,确定了在湍流MILD预混合条件下稀薄甲烷/空气混合物燃烧,废气再循环(EGR)稀释后燃烧的主要物理过程。它确定了系统动力学的驱动过程。确定了对TSR贡献最大的重要模式,并研究了反对或促进每种模式的作用的过程之间的竞争。发现两种重要的模式可以争夺该领域的最大部分,一种是爆炸性的,另一种是耗散性的。这种竞争主要偏向于耗散模式,这表明系统的动力学主要是主导性的。还发现引发这种竞争的关键过程是由爆炸模式引起的氢相关反应和由耗散模式引起的碳相关反应。此外,还发现尽管运输过程耗散,但爆炸过程的化学活性通过运输过程,特别是对流过程而得以增强。

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