首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >INVESTIGATION OF 3D BLADING AND NON-AXISYMMETRIC HUB ENDWALL CONTOURING TO A DUAL-STAGE COUNTER-ROTATING COMPRESSOR IN MULTISTAGE ENVIRONMENT
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INVESTIGATION OF 3D BLADING AND NON-AXISYMMETRIC HUB ENDWALL CONTOURING TO A DUAL-STAGE COUNTER-ROTATING COMPRESSOR IN MULTISTAGE ENVIRONMENT

机译:多级环境中双级反向旋转压缩机的3D叶片和非轴对称轮毂端壁的研究

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3D blading technique is an effective way to mitigate flow separation and improve the performance of turbomachinery. Non-axisymmetric endwall contouring technique is widely used to reduce transverse secondary flows near the endwall region in turbines, while the application of non-axisymmetric endwall contouring to compressors is rare. The investigation rig is the Northwestern Polytechnical University dual-stage counter-rotating compressor. In order to further improve the aerodynamic performance of the compressor, 3D blading optimization of the two rotors and outlet guide vane (OGV) was done in multistage environment at near stall condition. After 3D blading optimization, the radial secondary flows of the two rotors and the separation vortex at the tip of OGV are obviously reduced. However, the transverse secondary flows at the hub endwalls of the two rotors are scarcely improved. Based on the 3D blading optimization, non-axisymmetric hub endwall contouring optimization of the two rotors was carried out afterwards and the circumferential secondary flow losses of the two rotors are reduced effectively. The efficiency of the counter-rotating compressor on optimization point increases and the aerodynamic performance is improved largely after 3D blading and non-axisymmetric hub endwall contouring optimization.
机译:3D叶片技术是减轻流分离并提高涡轮机械性能的有效方法。非轴对称端壁轮廓技术被广泛用于减少涡轮机端壁区域附近的横向二次流,而非轴对称端壁轮廓技术在压缩机中的应用却很少。研究设备是西北工业大学双级反向旋转压缩机。为了进一步改善压缩机的空气动力性能,在多级环境中在接近失速的情况下对两个转子和出口导向叶片(OGV)进行了3D叶片优化。经过3D叶片优化后,两个转子的径向二次流和OGV尖端的分离涡流明显减少。但是,在两个转子的轮毂端壁处的横向次级流动几乎没有改善。然后基于3D叶片优化,对两个转子进行了非轴对称的轮毂端壁轮廓优化,从而有效降低了两个转子的周向二次流损失。在3D叶片和非轴对称轮毂端壁轮廓优化之后,反向旋转压缩机在优化点上的效率提高,空气动力学性能大大提高。

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