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LOCATION EFFECT OF BOUNDARY LAYER SUCTION ON COMPRESSOR HUB-CORNER SEPARATION

机译:边界层抽吸对压缩机轮毂角分离的定位作用

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The large secondary flow area in the compressor hub-corner region usually leads to three-dimensional separation in the passage with large amounts of total pressure loss. In this paper numerical simulations of a linear high-speed compressor cascade, consisting of five NACA 65-K48 stator profiles, were performed to analyze the flow mechanism of hub-corner separation for the base flow. Experimental validation is used to verify the numerical results. Active control of the hub-corner separation was investigated by using boundary layer suction. The influence of the selected locations of the endwall suction slot was investigated in an effort to quantify the gains of the compressor cascade performance. The results show that the optimal chordwise location should contain the development section of the three-dimensional corner separation downstream of the 3D corner separation onset. The best pitchwise location should be close enough to the vanes' suction surface. Therefore the optimal endwall suction location is the MTE slot, the one from 50% to 75% chord at the hub, close to the blade suction surface. By use of the MTE slot with 1% suction flow ratio, the total-pressure loss is substantially decreased by about 15.2% in the CFD calculations and 9.7% in the measurement at the design operating condition.
机译:压缩机轮毂角区域中较大的二次流面积通常会导致通道中的三维分离,并产生大量的总压力损失。在本文中,对由五个NACA 65-K48定子轮廓组成的线性高速压缩机级联进行了数值模拟,以分析基本流量的轮毂角分离的流动机理。实验验证用于验证数值结果。利用边界层吸力研究了主动角of分离的控制。研究了端壁吸入槽的选定位置的影响,以量化压缩机级联性能的收益。结果表明,最佳弦向位置应包含3D角分离起始点下游的三维角分离的展开部分。最佳螺距位置应足够靠近叶片的吸入表面。因此,最佳的端壁吸力位置是MTE插槽,靠近轮毂吸力表面的位置是毂上弦从50%到75%的位置。通过使用吸入流量比为1%的MTE插槽,在设计工作条件下,CFD计算中的总压力损失显着降低了约15.2%,测量中的总压力损失则显着降低了9.7%。

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