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Flame Wrinkling Factor Dynamic Modeling for Large Eddy Simulations of Turbulent Premixed Combustion

机译:湍流预混燃烧大涡模拟的起皱因子动力学建模

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摘要

Large eddy simulations (LES) of a turbulent jet premixed flame are performed using a dynamic formulation for the flame surface wrinkling factor entering the F-TACLES combustion model. The model parameter is automatically adjusted on the fly, taking advantage of the knowledge of the resolved scales in the flow field. Three cases are considered: a global formulation where the parameter is spatially uniform depending only on time and determined either from reaction rates or progress variable resolved fields, as well as a local determination where this parameter, estimated from resolved progress variable fields, varies with both location and time. The global formulation, in which the model parameter evolves only slightly around its mean value, provides similar results when setting this mean as a fixed non-dynamic value. On the other hand, a local parameter is found to increase from low values, corresponding to planar laminar flame fronts, to values larger than in the global case, as the flame is progressively wrinkled by turbulence motions when convected downstream. However, the three formulations lead to very similar results in terms of mean velocity and mass fraction profiles which then do not allow to discriminate between the different models. On the contrary, the flame response to inlet velocity modulation is found to depend on the model formulation, suggesting a possible important role in the prediction of combustion instabilities. Local parameter values, as well as local heat release rates, are clearly related to the large coherent structures developing in the flow, in agreement with previous observations.
机译:使用进入F-TACLES燃烧模型的火焰表面起皱因子的动态公式,对湍流射流预混火焰进行大涡模拟(LES)。利用流场中已解析比例的知识,可自动动态调整模型参数。考虑了以下三种情况:一种全局公式,其中参数仅在时间上在空间上是统一的,并且可以从反应速率或进度变量解析字段中确定,以及一种局部确定,其中从解析进度变量字段中估算出的该参数随两个参数而变化位置和时间。当将模型参数设置为固定的非动态值时,模型参数仅在其平均值附近略有变化的全局公式提供了相似的结果。另一方面,发现局部参数从对应于平面层状火焰前沿的低值增加到大于整体情况下的值,因为当在下游对流时,火焰由于湍流运动而逐渐起皱。但是,这三种公式在平均速度和质量分数分布方面得出了非常相似的结果,因而无法区分不同的模型。相反,发现火焰对入口速度调制的响应取决于模型公式,表明在预测燃烧不稳定性中可能发挥重要作用。与以前的观察结果一致,局部参数值以及局部放热率显然与流动中形成的大型相干结构有关。

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