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Direct numerical simulation of stationary lean premixed methane-air flames under intense turbulence

机译:强烈湍流下固定的稀薄预混甲烷-空气火焰的直接数值模拟

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Direct numerical simulation of a three-dimensional spatially-developing turbulent Bunsen flame has been performed at three different turbulence intensities. The simulations are performed using a reduced methane-air chemical mechanism which is specifically tailored for the lean premixed conditions simulated here. A planar-jet turbulent Bunsen flame configuration is used in which turbulent preheated methane-air mixture at 0.7 equivalence ratio issues through a central jet and is surrounded by a hot laminar coflow of burned products. The turbulence characteristics at the jet inflow are selected such that combustion occurs in the thin reaction zones (TRZ) regime. At the lowest turbulence intensity the conditions fall on the boundary between the TRZ regime and the corrugated flamelet regime. At the highest turbulence intensity the conditions correspond to the boundary between the TRZ regime and the broken reaction zones regime. The data from the three simulations is analyzed to understand the effect of turbulent stirring on the flame structure and thickness. Statistical analysis of the data shows that the thermal preheat layer of the flame is thickened due to the action of turbulence, but the reaction zone is not significantly affected.
机译:在三种不同的湍流强度下,进行了三维空间发展湍流本生火焰的直接数值模拟。使用减少的甲烷-空气化学机理进行模拟,这是专门针对此处模拟的稀薄预混合条件量身定制的。使用平面射流湍流的本生火焰构造,其中湍流的预热甲烷空气混合物以0.7当量比的形式通过中央射流排出,并被燃烧产物的热层流同流包围。选择射流处的湍流特性,以使燃烧在稀薄反应区(TRZ)状态下发生。在最低湍流强度下,条件落在TRZ模式和波纹小火焰模式之间的边界上。在最高湍流强度下,条件对应于TRZ态与破碎反应区态之间的边界。分析来自三个模拟的数据,以了解湍流搅拌对火焰结构和厚度的影响。数据的统计分析表明,由于湍流的作用,火焰的热预热层变厚了,但是反应区并没有受到明显的影响。

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