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COMPUTATION OF INTERNAL SEPARATED FLOWS USING A ZONAL DETACHED EDDY SIMULATION APPROACH

机译:使用区域分离涡流模拟方法计算内部分离流动

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摘要

This paper investigates the use of the Spalart-Allmaras one-equation turbulence model with detached eddy simulation (DES) modifications for predicting internal separated flows. For these flows, it is shown that the use of grid spacing to segregate Reynolds-averaged Navier Stokes (RANS) and large eddy simulation (LES) modes in the DES approach is cumbersome, and not practical in some cases. To allow DES to be more readily applied to such flows, a zonal approach is proposed. In this approach the LES mode in DES is only used in detached shear layer regions. These regions are dynamic, and are defined by local flow and turbulence quantities during the computation. No blending of RANS-based and LES-based regions is used in the approach such that the attached shear layer calibration of the underlying RANS-based turbulence model is not affected. The zonal DES approach is applied to two internal flows: a stenosis in a pipe and a 180° turn-around duct. Results show that the zonal DES predictions are in excellent agreement with the experimentally measured velocity profiles and pressure distributions, and are significantly improved relative to RANS predictions.
机译:本文研究了带有分离涡流模拟(DES)修改的Spalart-Allmaras一方程湍流模型在预测内部分离流中的应用。对于这些流,表明在DES方法中使用网格间距来分离雷诺平均Navier Stokes(RANS)模式和大涡模拟(LES)模式是麻烦的,并且在某些情况下不切实际。为了使DES更容易应用于此类流,提出了分区方法。在这种方法中,DES中的LES模式仅用于分离的剪切层区域。这些区域是动态的,并且在计算过程中由局部流量和湍流量定义。在该方法中未使用基于RANS的区域和基于LES的区域的混合,因此不影响基础基于RANS的湍流模型的附加剪切层校准。区域DES方法适用于两种内部流动:管道狭窄和180°转向管道。结果表明,纬向DES预测与实验测得的速度剖面和压力分布非常吻合,并且相对于RANS预测而言有明显改善。

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