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首页> 外文期刊>Flow, Turbulence and Combustion >Anisotropy Invariant Reynolds Stress Model of Turbulence (AIRSM) and its Application to Attached and Separated Wall-Bounded Flows
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Anisotropy Invariant Reynolds Stress Model of Turbulence (AIRSM) and its Application to Attached and Separated Wall-Bounded Flows

机译:湍流各向异性不变雷诺应力模型(AIRSM)及其在附着和分离壁有界流中的应用

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摘要

Numerical predictions with a differential Reynolds stress closure, which in its original formulation explicitly takes into account possible states of turbulence on the anisotropy-invariant map, are presented. Thus the influence of anisotropy of turbulence on the modeled terms in the governing equations for the Reynolds stresses is accounted for directly. The anisotropy invariant Reynolds stress model (AIRSM) is implemented and validated in different finite-volume codes. The standard wall-function approach is employed as initial step in order to predict simple and complex wall-bounded flows undergoing large separation. Despite the use of simple wall functions, the model performed satisfactory in predicting these flows. The predictions of the AIRSM were also compared with existing Reynolds stress models and it was found that the present model results in improved convergence compared with other models. Numerical issues involved in the implementation and application of the model are also addressed.
机译:提出了具有微分雷诺应力闭合的数值预测方法,该方法在其原始公式中明确考虑了各向异性不变图上湍流的可能状态。因此,湍流各向异性对雷诺应力控制方程中建模项的影响是直接考虑的。各向异性不变雷诺应力模型(AIRSM)在不同的有限体积代码中得以实现和验证。标准的墙函数方法被用作初始步骤,以预测经历大分离的简单和复杂的边界流。尽管使用了简单的墙函数,但是该模型在预测这些流量方面表现令人满意。还将AIRSM的预测与现有的雷诺应力模型进行了比较,发现与其他模型相比,本模型可提高收敛性。模型的实现和应用中涉及的数字问题也得到解决。

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