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ANISOTROPIC EDDY VISCOSITY IN THE SECONDARY FLOW OF A LOW-SPEED LINEAR TURBINE CASCADE

机译:低速线性涡轮级联二次流中的各向异性涡流粘度

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The final losses within a turbulent flow are realized when eddies completely dissipate to internal energy through viscous interactions. The accurate prediction of the turbulence dissipation, and therefore the losses, requires turbulence models which represent, as accurately as possible, the true flow physics. Eddy viscosity turbulence models, commonly used for design level computations, are based on the Boussinesq approximation and inherently assume the eddy viscosity field is isotropic. The current paper compares the computational predictions of the flow downstream of a low-speed linear turbine cascade to the experimentally measured results. Steady-state computational simulations were performed using ANSYS CFX vl2.0 and employed the shear stress transport (SST) turbulence model with the γ-Re_θ transition model. The experimental data includes measurements of the mean and turbulent flow quantities. Steady pressure measurements were collected using a seven-hole pressure probe and the turbulent flow quantities were measured using a rotatable x-type hotwire probe. Data is presented for two axial locations: 120% and 140% of the axial chord (C_x) downstream of the leading edge. The computed loss distribution and total bladerow losses are compared to the experimental measurements. Differences are noted and a discussion of the flow structures provides insights into the origin of the differences. Contours of the shear eddy viscosity are presented for each axial plane. The secondary flow appears highly anisotropic, demonstrating a fundamental difference between the computed and measured results. This raises questions as to the validity of using two-equation turbulence models, which are based on the Boussinesq approximation, for secondary flow predictions.
机译:当涡流通过粘性相互作用完全消散到内部能量时,就实现了湍流中的最终损失。湍流耗散以及损失的准确预测需要湍流模型,该模型尽可能准确地表示真实的流动物理场。通常用于设计级计算的涡流湍流模型基于Boussinesq近似,并固有地假设涡流场是各向同性的。当前论文将低速线性涡轮机叶栅下游流动的计算预测与实验测量结果进行了比较。使用ANSYS CFX vl2.0进行稳态计算仿真,并将剪切应力传输(SST)湍流模型与γ-Re_θ过渡模型一起使用。实验数据包括平均流量和湍流流量的测量值。使用七孔压力探头收集稳态压力测量值,并使用可旋转的X型热线探头测量湍流流量。给出了两个轴向位置的数据:前缘下游的轴向弦(C_x)的120%和140%。将计算出的损耗分布和总的桨叶损耗与实验测量值进行比较。记录了差异,并且对流程结构的讨论提供了差异来源的见解。给出了每个轴向平面的剪切涡流粘度的轮廓。二次流呈现出高度的各向异性,表明了计算结果和测量结果之间的根本差异。这就提出了关于使用基于Boussinesq近似的二次方程湍流模型进行二次流预测的有效性的疑问。

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