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Numerical analysis of reaction-diffusion effects on species mixing rates in turbulent premixed methane-air combustion

机译:反应 - 扩散对湍流预混甲烷 - 空气燃烧中物种混合速率影响的数值分析

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摘要

The scalar mixing time scale, a key quantity in many turbulent combustion models, is investigated for reactive scalars in premixed combustion. Direct numerical simulations (DNS) of three-dimensional, turbulent Bunsen flames with reduced methane-air chemistry have been analyzed in the thin reaction zones regime. Previous conclusions from single step chemistry DNS studies are confirmed regarding the role of dilatation and turbulence-chemistry interactions on the progress variable dissipation rate. Compared to the progress variable, the mixing rates of intermediate species is found to be several times greater. The variation of species mixing rates are explained with reference to the structure of one-dimensional premixed laminar flames. According to this analysis, mixing rates are governed by the strong gradients which are imposed by flamelet structures at high Damk¨ohler numbers. This suggests a modeling approach to estimate the mixing rate of individual species which can be applied, for example, in transported probability density function simulations. Flame turbulence interactions which modify the flamelet based representation are analyzed.
机译:标量混合时间标度是许多湍流燃烧模型中的关键量,它针对预混燃烧中的反应性标量进行了研究。在稀薄的反应区范围内,对具有减少的甲烷-空气化学作用的三维湍流本生火焰的直接数值模拟(DNS)进行了分析。从单步化学DNS研究得出的先前结论已得到证实,有关扩散和湍流-化学相互作用对进展变量耗散率的作用。与进度变量相比,发现中间物种的混合速率要大几倍。参照一维预混层流火焰的结构解释了物种混合速率的变化。根据该分析,混合速率受高达姆霍勒数下的小火焰结构强梯度影响。这建议了一种建模方法来估计单个物种的混合速率,该方法可以应用于例如运输概率密度函数模拟中。分析了修改基于小火焰的表示的火焰湍流相互作用。

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