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Counter-Propagating Rotating Stall of Vaned Diffuser in a Centrifugal Compressor Near Design Condition

机译:在设计条件附近的离心式压缩机中反向传播叶片扩散器的旋转摊位

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摘要

Unstable flow in the vaned diffuser of a centrifugal compressor stage near design condition is investigated by numerical simulation. The simulation is performed with the unsteady Navier-Stokes equations and three different turbulence models. Comparisons of the characteristic curves of the stage have been carried out between simulation and experiment, and good agreement is obtained. The fluctuation signals near the interface between the impeller and the diffuser are also quantitatively analyzed from macro and micro scales under a series of mass flow conditions. The simulation results show that an abnormal counter-propagating rotating stall in the vaned diffuser is detected near design condition. The rotating stall displays that four stall cells near the shroud side of the vaned diffuser propagate slowly at a rate of approximately 0.675% of the impeller rotating frequency along the opposite direction of the impeller rotation. The propagation speed increases as the mass flow decreases. The generation and propagation mechanisms of this phenomenon are elucidated, respectively. It is found that flow separation near the diffuser shroud side is produced due to the spanwise variation of flow angles near the impeller exit, which leads to the generation of stall cells in the diffuser. The circumferential propagation of the rotating stall cells is propelled by the accumulation and release of the fluid energy from impeller passages. Further studies show that this phenomenon can be restrained by modifying the installation angle of diffuser vanes.
机译:通过数值模拟研究了离心式压缩机阶段的离心压缩机阶段的叶片扩散器中的不稳定流动。使用非稳态Navier-Stokes方程和三种不同的湍流模型进行仿真。在仿真和实验之间进行了阶段的特征曲线的比较,并且获得了良好的一致性。在一系列质量流量条件下,还从宏观和微尺度分析叶轮和扩散器之间的接口附近的波动信号。仿真结果表明,在设计条件附近检测到叶片扩散器中的异常反传播旋转失速。旋转档位显示叶片漫射器的护罩侧附近的四个失速电池在沿叶轮旋转的相反方向的叶轮旋转频率的大约0.675%的速率下传播缓慢。随着质量流量的减小,传播速度增加。这种现象的产生和繁殖机制分别阐明。发现扩散器护罩侧附近的流动分离由于叶轮出口附近的流动角度的氮气变化而产生,这导致扩散器中的失速电池的产生。旋转失速电池的圆周传播通过来自叶轮通道的流体能量的累积和释放而推动。进一步的研究表明,通过修改扩散器叶片的安装角度,可以抑制这种现象。

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