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首页> 外文期刊>Journal of turbomachinery >Characterization and Impact of Secondary Flows in a Discrete Passage Centrifugal Compressor Diffuser
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Characterization and Impact of Secondary Flows in a Discrete Passage Centrifugal Compressor Diffuser

机译:在离散通道离心压缩机扩散器中二次流动的表征和影响

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Truncating the exit of a discrete passage centrifugal compressor diffuser is observed to enhance a research compressor's stall line. By interrogating the experimental data along with a set of well-designed Reynolds-Averaged Navier-Stokes computations, this improvement is traced to the reduced impact of secondary flows on the truncated diffuser's boundary layer growth. The secondary flow system is characterized by counter-rotating streamwise vortex pairs that persist throughout the diffuser passage. The vortices originate from two sources: flow nonuniformity at the impeller exit and separation off the leading edge cusps unique to a discrete passage diffuser. The latter detrimentally impacts the diffuser pressure rise capability by accumulating high loss flow along the diffuser wall near the plane of symmetry between the vortices. This contributes to a large passage separation in the baseline diffuser. Using reduced-order modeling, the impact of the vortices on the boundary layer growth is shown to scale inversely with the diffuser aspect ratio, and thus, the separation extent is reduced for the truncated diffuser. Because the diffuser incidence angle influences the strength and location of the vortices, this mechanism can affect the slope of the compressor's pressure rise characteristic and impact its stall line. Stall onset for the baseline diffuser configuration is initiated when the vortex location and the corresponding passage separation transition from pressure to suction side with increased cusp incidence. Conversely, because the extent of the passage separation in the truncated diffuser is diminished, the switch in separation side does not immediately initiate instability.
机译:观察到截断离散通道离心压缩机扩散器的出口,以增强研究压缩机的档位。通过询问实验数据以及一套精心设计的雷诺平均天线的Navier-Stokes计算,这种改进被描绘为次级流动对截短的扩散器的边界层增长的影响。二次流动系统的特征在于反向旋转流动涡流对,该对持续整个扩散器通道。漩涡源自两个来源:叶轮出口处的流动不均匀,并从离散通道扩散器上独一无二的前缘尖顶分离。后者通过在涡流之间的对称平面附近积聚沿扩散壁的高损失流动,对扩散器压力升高能力进行了劣地影响。这有助于基线扩散器中的大通路分离。使用降低阶建模,涡流对边界层生长的影响显示与扩散器纵横比相反,因此,对于截短的扩散器来说,分离程度降低。因为扩散器入射角影响涡流的强度和位置,所以这种机制可以影响压缩机的压力升高特性的斜率并影响其摊位线。当涡流位置和相应的通道分离从压力转换到吸入侧时,启动基线扩散器配置的停滞状态,随着CUSP入射的增加。相反,由于截短的扩散器中的通道分离的程度降低,所以分离侧的开关不会立即启动不稳定性。

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