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Assessment of the Elliptic Blending Reynolds Stress Model for a Rotating Turbulent Pipe Flow Using New DNS Data

机译:使用新DNS数据评估旋转湍流管道的椭圆混合雷诺应力模型

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New direct numerical simulation data of a fully-developed axially rotating pipe at Re = 5300 and Re = 19,000 is used to examine the performance of the second-moment closure elliptic blending Reynolds stress model for a range of rotation rates from N=0 to N=3. In agreement with previous studies (using alternative second-moment closure models), the turbulence suppression observed by the DNS is over-predicted. This over-prediction is greatest at Re = 5,300 and most noticeable in the poor prediction of the u' w' turbulent shear-stress component. At N=3 the flow is completely relaminarized in contrast to the DNS that is only partly relaminarized. The accuracy of the second-moment closure model is superior to the two-equation k - ω SST model which predicts pure solid-body rotation, however, both are equally poor at the highest rotation rates. The accuracy of each model is also assessed for the initial portion of a rotating pipe where in contrast to the fully-developed rotating pipe flow the turbulent suppression is under-predicted compared to the DNS. It is clear that greater work is required to understand the root cause of the poor prediction by these second-moment closure models and further DNS and experimental work is underway to assist this effort.
机译:在Re = 5300和Re = 19,000处的完全开发的轴向旋转管道的新直接数值模拟数据用于检查从n = 0到n的旋转速率范围的第二矩闭合椭圆形混合reynolds应力模型的性能= 3。在与先前的研究(使用替代二阶闭合模型)的同意中,通过DNS观察到的湍流抑制是过度预测的。这种过度预测在Re = 5,300中最大,并且在U'W'湍流剪切应力分量的差的预测中最差。在n = 3时,流量与仅部分重新分析的DNS对比度完全relamizizized。第二时刻闭合模型的准确性优于两个等式K-ωSST模型,其预测纯固体旋转,然而,两者都在最高旋转速率下同样差。每个模型的准确性也用于旋转管的初始部分,其中与完全显影的旋转管流相比,与DNS相比,预测湍流抑制。很明显,需要更大的工作来了解这些二点封闭模型预测差的根本原因,并正在进行进一步的DNS和实验工作来帮助这项工作。

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