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Large-eddy structures of turbulent swirling flows and methane-air swirling diffusion combustion

机译:湍流和甲烷-空气旋流扩散燃烧的大涡结构

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Turbulent swirling flows and methane-air swirling diffusion combustion are studied by large-eddy simulation (LES) using a Smagorinsky-Lilly subgrid scale turbulence model and a second-order moment (SOM) SGS combustion model, and also by RANS modeling using the Reynolds Stress equation model with the IPCM+wall and IPCM pressure-strain models and SOM combustion model. The LES statistical results for swirling flows give good agreement with the experimental results, indicating that the adopted subgrid-scale turbulence model is suitable for swirling flows.The LES instantaneous results show the complex vortex shedding pattern in swirling flows. The initially formed large vortex structures soon break up in swirling flows. The LES statistical results of combustion modeling are near the experimental results and are as good as the RANS-SOM modeling results. The LES results show that the size and range of large vortex structures in swirling combustion are different from those of isothermal swirling flows, and the chemical reaction is intensified by the large-eddy vortex structures.
机译:使用Smagorinsky-Lilly亚网格尺度湍流模型和二阶矩(SOM)SGS燃烧模型,通过大涡模拟(LES)研究湍流和甲烷-空气涡流扩散燃烧,还使用Reynolds通过RANS建模应力方程模型具有IPCM + wall和IPCM压力应变模型以及SOM燃烧模型。旋流的LES统计结果与实验结果吻合良好,表明所采用的亚网格尺度湍流模型适用于旋流。LES瞬时结果表明旋流中的涡旋脱落规律复杂。最初形成的大涡旋结构很快在旋流中破裂。燃烧模型的LES统计结果接近于实验结果,与RANS-SOM建模结果一样好。 LES结果表明,涡旋燃烧中大涡旋结构的大小和范围与等温旋流不同,大涡旋结构加剧了化学反应。

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