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Pressure effects on flame structures and chemical pathways for lean premixed turbulent H_2/air flames: Three-dimensional DNS studies

机译:稀薄预混湍流H_2 /空气火焰对火焰结构和化学路径的压力影响:三维DNS研究

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摘要

This paper presents three-dimensional direct numerical simulations of lean premixed turbulent H-2/air flames over a range of pressures using a detailed chemical mechanism. Effects of pressure on flame front structures and heat release from pressure-dependent pathways are analysed. Under the same initial turbulence at different pressures, the Kolmogorov length scale and local flame thickness decrease with increasing pressure. Thinner and sharper structures are found on the flame front at elevated pressures. As the pressure is increased from 1 atm to 5 atm, heat release is greatly enhanced at convex regions but weakened at concave regions of the flame fronts, which indicates that the effect of Darrieus-Landau instability is becoming stronger. The correlation of heat release and fuel consumption is also strengthened as pressure is elevated. A main pressure-dependent heat release reaction, H+O-2(+M) = HO2(+M), is found to contribute less to the total heat release with increasing pressure for turbulent flames, which is contrary to the trend in laminar flames. In the low temperature zones, this is due to the decreased H radical pool at elevated pressure. In the high temperature regions, the reaction is less competitive compared with H+OH+M=H2O+M, thereby reducing its contribution to the heat release.
机译:本文使用详细的化学机理,对在一定压力范围内的稀薄预混湍流H-2 /空气火焰进行了三维直接数值模拟。分析了压力对火焰前部结构和依赖压力的路径释放热量的影响。在不同压力下相同的初始湍流下,Kolmogorov长度尺度和局部火焰厚度随压力增加而减小。在升高的压力下,火焰前缘发现更薄,更锐利的结构。随着压力从1个大气压增加到5个大气压,火焰前凸区的放热量大大增强,而凹区则减弱,这表明Darrieus-Landau失稳的影响越来越大。随着压力的升高,热量释放和燃料消耗的相关性也增强了。发现随着压力增加,湍流火焰的主要压力依赖性放热反应H + O-2(+ M)= HO2(+ M)对总放热的贡献较小,这与层流趋势相反火焰。在低温区,这是由于在高压下H自由基池减少所致。在高温区域,与H + OH + M = H2O + M相比,该反应的竞争性较低,从而降低了其对放热的贡献。

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