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Large-eddy simulation of a bluff-body-stabilized non-premixed flame using a recursive filter-refinement procedure

机译:使用递归过滤细化程序对钝体稳定的非预混火焰进行大涡模拟

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摘要

A large-eddy simulation (LES) of a bluff-body-stabilized flame has been carried out using a new strategy for LES grid generation. The recursive filter-refinement procedure (RFRP) has been used to generate optimized clustering for variable density combustion simulations. A methane-hydrogen fuel-based bluff-body-stabilized experimental configuration has been simulated using state-of-the-art LES algorithms and subfilter models. The combustion chemistry is described using a precomputed, laminar flamelet model-based look-up table. The GRI-2.11 mechanism is used to build the look-up table parameterized by mixture fraction and scalar dissipation rate. A beta function is used for the subfilter mixture fraction filtered density function (FDF). The simulations show good agreement with experimental data for the velocity field. Time-averaged profiles of major species and temperature are very well reproduced by the simulation. The mixture fraction profiles show excellent agreement at all locations, which helps in understanding the validity of flamelet assumption for this flame. The results indicate that LES computations are able to quantitatively predict the flame structure quite accurately using the laminar flamelet model. Simulations tend to corroborate experimental evidence that local extinction is not significant for this flame.
机译:使用一种生成LES网格的新策略,对钝体稳定火焰进行了大涡模拟(LES)。递归过滤器细化程序(RFRP)已用于生成用于可变密度燃烧模拟的优化聚类。使用最先进的LES算法和子过滤器模型模拟了基于甲烷-氢燃料的钝体稳定实验配置。使用预计算的,基于层流小火焰模型的查找表描述了燃烧化学。 GRI-2.11机制用于构建由混合分数和标量耗散率参数化的查找表。 Beta函数用于子过滤器混合分数过滤密度函数(FDF)。仿真显示了与速度场实验数据的良好一致性。通过模拟可以很好地再现主要物种和温度的时间平均轮廓。混合物分数分布在所有位置均显示出极好的一致性,这有助于理解该火焰的小火焰假设的有效性。结果表明,LES计算能够使用层流小火焰模型相当准确地定量预测火焰结构。模拟趋于证实实验证据,表明该火焰的局部熄灭并不重要。

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