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FREE JET IN CONFINED COMBUSTION CHAMBER: NUMERICAL MODEL FOR INDUSTRIAL APPLICATION IN LOW NO{sub}x BURNERS

机译:在狭窄燃烧室中的自由喷射:低NO {SUB} X燃烧器工业应用的数值模型

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The present work is focused on the prediction of the fluid dynamics behaviour for natural gas burners characterized by low NO{sub}X emissions. The fluid dynamics in the combustion chamber is investigated in order to look for the condition under which it is possible to obtain a diluted combustion. The experimental data used as reference come from two set of tests related to different isothermal flow behaviour: high Reynolds number (Re=68000) and lower Reynolds number (Re=5427). Many turbulence models are examined in order to validate high and low Reynolds case. The k-ω models implemented by Wilcox in 1998 seems to properly predict the fluid dynamics behaviour of the jet for high Reynolds numbers, while, for low Reynolds jets, a modification needs to be introduced. The numerical analysis for low Reynolds number, based on an unstructured 2D axial symmetrical grid, shows that no two-equation turbulence models fit the experimental data for low Reynolds jet. Based on the evidence that at low Reynolds number the hypothesis of homogeneous isotropic small turbulence eddy is not valid a modification of k-ε turbulence model's closure constant has been proposed. This leads to a better agreement with the experimental data. The results demonstrate that great attention needs to be taken and invested in the identification of the turbulence models used in CFD and in the proper tunneling (of the closure coefficient for the turbulence model) that need to be computed case by case accordingly with the specific turbulence level and fluid dynamic features of the jet itself.
机译:本作本作的重点是预测用于特征的天然气燃烧器的流体动力学行为,其特征在于NO {Sub} x排放。研究了燃烧室中的流体动力学以寻找可以获得稀释燃烧的条件。用作参考的实验数据来自与不同等温流量行为相关的两组测试:高雷诺数(RE = 68000)和下雷诺数(RE = 5427)。检查许多湍流模型以验证高低雷诺的情况。 1998年由Wilcox实现的K-Ω模型似乎适当地预测了高雷诺数的射流的流体动力学行为,而对于低雷诺射流,需要介绍修改。基于非结构化的2D轴对称网格的低雷诺数的数值分析表明,没有双等式湍流模型适合低雷诺射流的实验数据。基于在低雷诺数的证据,均匀各向同性小湍流涡流的假设是没有有效的,已经提出了k-ε湍流模型的修改。这导致更好的与实验数据一致。结果表明,需要采取极大的关注,并在CFD中使用的湍流模型以及在需要计算的情况下,在需要计算的情况下,识别CFD中使用的湍流模型以及需要计算的情况,这是通过特定的湍流来计算的情况喷气机本身的水​​平和流体动力学特征。

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