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Comparative Study of Turbulence Models in Separated-Attached Diffuser Flow

机译:分离式扩散器流中湍流模型的比较研究

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Diffuser flow is characterized by locally attached separation bubble which is also common in compressor cascade flow. To predict the separation region accurately with RANS solvers, turbulence enclosure models are critical to the CFD ability to capture adequately the separation. In general two-equation models are regarded as practical choice and developed for diffusion flow, such as k-ε, k-ω, shear stress transportation (SST), as well as v2-f.In this paper, five common turbulence models were selected to predict the attached separation flow in an experiment-studied planar diffuser with the software FLUENT. k-ε model failed to predict the attached separation. S-A model, Wilcox's k-ω model, SST k-ω model and v2 f model predicted the separation bubble near the inclined wall and the S-A model's reattached length is longest while the v2-f model is smallest. The k-ω model presented the same capability with SSt model in capturing the separation bubble along the inclined wall of the diffuser but smaller gradient of velocity near wall in the outlet part.
机译:扩散器流量的特征是局部附着的分离气泡,这在压缩机级联流量中也很常见。为了使用RANS求解器准确预测分离区域,湍流罩模型对于CFD足够捕获分离的能力至关重要。一般而言,对于扩散流,两方程模型被认为是可行的选择,并开发出来了,例如k-ε,k-ω,切应力传递(SST)以及v2-f。在本文中,我们使用了五个常见的湍流模型可以使用FLUENT软件在经过实验研究的平面扩散器中选择要预测的附加分离流。 k-ε模型无法预测附着的分离。 S-A模型,Wilcox的k-ω模型,SSTk-ω模型和v2 f模型预测了倾斜壁附近的分离气泡,并且S-A模型的重新附着长度最长,而v2-f模型最小。 k-ω模型具有与SSt模型相同的功能,可以捕获沿扩散器倾斜壁的分离气泡,但出口部分壁附近的速度梯度较小。

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