Effects of Rotation on the Flow Structure in a Compressor Cascade

J. Ventosa-Molina, Björn Koppe, M. Lange, R. Mailach, J. Fröhlich
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引用次数: 2

Abstract

In turbomachines, rotors and stators differ by the rotation of the former. Hence, half of each stage is directly influenced by rotation effects. The influence of rotation on the flow structure and its impact on the performance is studied through Wall-Resolving Large Eddy Simulations of a rotor with large relative tip gap size. The simulations are performed in a rotating frame with rotation accounted for through a Coriolis force term. In a first step experimental results are used to provide validation. The main part of the study is the comparison of the results from two simulations, one representing the rotating configuration, one with the Coriolis force removed, without any other change. This setup allows very clean assessment of the influence of rotation. The turbulence-resolving approach ensures that the turbulent flow features are well represented. The results show a significant impact of rotation on the secondary flow. In the tip region the Tip Leakage Vortex is enlarged and destabilised. Inside the tip gap the flow is altered as well, with uniformization in the rotating case. At the blade midspan, no significant effects are observed on the suction side, while an earlier transition to turbulence is found on the pressure side. Near the hub, rotation effects are shown to reduce the corner separation significantly.
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旋转对压气机叶栅流动结构的影响
在涡轮机上,转子和定子的不同之处在于前者的旋转。因此,每个阶段有一半直接受到旋转效应的影响。通过对大相对叶尖间隙转子的分壁大涡模拟,研究了旋转对流动结构的影响及其对性能的影响。仿真是在一个旋转框架中进行的,旋转是通过科里奥利力项来解释的。在第一步,实验结果用于提供验证。研究的主要部分是比较两个模拟的结果,一个代表旋转构型,一个去除科里奥利力,没有任何其他变化。这种设置允许非常清晰地评估旋转的影响。紊流解析方法保证了紊流特征得到很好的表现。结果表明,旋转对二次流有显著影响。在叶尖区域,叶尖泄漏涡扩大并失稳。在尖端间隙内,流动也发生了变化,在旋转的情况下均匀化。在叶片跨中,吸力侧没有观察到明显的影响,而压力侧较早地过渡到湍流。在轮毂附近,旋转效应可以显著减少转角分离。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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