首页> 外文会议>ASME turbo expo: turbomachinery technical conference and exposition >NUMERICAL INVESTIGATION OF DIFFUSER ROTATING STALL AND SYSTEM INSTABILITY IN A CENTRIFUGAL COMPRESSOR WITH VANED DIFFUSER
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NUMERICAL INVESTIGATION OF DIFFUSER ROTATING STALL AND SYSTEM INSTABILITY IN A CENTRIFUGAL COMPRESSOR WITH VANED DIFFUSER

机译:带叶片扩散器的离心压缩机中扩散器旋转失速的数值研究

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The operating range of a centrifugal compressor is often limited by the occurrence of the flow instability, such as diffuser rotating stall or system surge. In the paper, the unsteady numerical simulations are performed on a low-speed centrifugal compressor to investigate the characteristic of the rotating stall in the vaned diffuser. And also, the developed model of lumped parameter is used to predict the system instability. The flow field in the diffuser is firstly investigated at near stall condition. It is found that the leading-edge vortex and the secondary flow induce the hub-corner separation at the suction side of the diffuser blade. When the mass flow rate is reduced gradually, the fore part of the volute turns to act as a diffuser from a nozzle. Under the influence of the asymmetry induced by the volute, the hub-corner separation firstly develops into rotating stall in the passage with the lowest mass flow rate when at critical stall point. And then the diffuser rotating stall propagates along the circumferential direction at about 7% of the impeller speed. And also, the model of lumped parameter considering the effect of rotating stall is developed to analyze the system instability of mild surge. The predicted vibration frequency is within 5.8% of the measurement and the predicted transient process in mild surge matches well with the measurement. With different volume of the compressed air, the transient compressor characteristic tends to be stabilized or oscillates in a cycle along the counter-clockwise with different magnitude.
机译:离心压缩机的工作范围通常受流量不稳定性的影响,例如扩压器旋转失速或系统喘振。在本文中,在低速离心压缩机上进行了非稳态数值模拟,以研究叶片式扩压器中旋转失速的特性。并且,将开发的集总参数模型用于预测系统不稳定性。首先在接近失速条件下研究扩散器中的流场。发现前缘涡流和二次流在扩散器叶片的吸入侧引起轮毂角分离。当质量流量逐渐减小时,蜗壳的前部旋转以充当喷嘴的扩散器。在蜗壳引起的不对称性的影响下,在临界失速点时,毂角分离首先在质量流量最低的通道中发展为旋转失速。然后,扩压器旋转失速沿圆周方向以叶轮速度的7%传播。并建立了考虑旋转失速影响的集总参数模型,以分析轻度电涌的系统不稳定性。预测的振动频率在测量值的5.8%范围内,并且在轻度波动中的预测瞬态过程与测量值非常吻合。在压缩空气量不同的情况下,瞬态压缩机特性趋于稳定或沿逆时针方向以不同的幅度在一个周期内振荡。

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