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Tip leakage flow, tip aerodynamic loading and rotating instability in a subsonic high-speed axial flow compressor rotor

机译:尖端泄漏流动,尖端空气动力装载和源极高速轴流压缩机转子中的旋转不稳定

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Rotating instability as an unsteady flow phenomenon is closely related to rotating stall in the compressor. In this paper, dynamic pressure measurements and full-annular URANS simulations were conducted in a subsonic axial flow compressor rotor to enhance the understanding of the flow mechanism of RI. RI characterized by a frequency band in the spectrum is detected at a narrow stable operating range in the experiments. The monitoring results from simulations show that RI characterized by a frequency hump in the spectrum appears near stall condition which is consistent with the observation in the experiments. RI shifts to lower frequency band in the rotating frame with the decrease of mass flow rate. Details of the numerical flow field indicate that RI develops synchronously with the oscillation of the tip leakage flow (TLF). The tip leakage vortex (TLV) forms a low static pressure near the pressure surface side of neighboring blade through an induced vortex. It varies the tip aerodynamic loading. Both the tip aerodynamic loading and TLF get strong with the decrease of mass flow rate. The stronger TLV will form a stronger induced vortex near the pressure surface side of the neighboring blade and propel the induced vortex toward the leading edge of blade. When a high tip aerodynamic loading region is influenced by the induced vortex near the pressure surface side, the intensity of TLF in the next passage will be weakened. Then, TLF fluctuates and leads to the oscillation of neighboring blade tip aerodynamic loading as well as the oscillation of TLF issuing from the neighboring blade. The circumferential propagation of this influence process results in RI. (C) 2020 Elsevier Masson SAS. All rights reserved.
机译:随着不稳定的流动现象旋转不稳定与压缩机中的旋转失速密切相关。在本文中,动态压力测量和全环核心模拟在亚音速轴流压缩机转子中进行,以增强RI的流动机构的理解。在实验中的窄稳定操作范围内检测到频谱中的频带所表征的RI。 Simulations的监测结果表明,在频谱中的频率驼峰特征的RI出现在失速条件附近,这与实验中的观察一致。 RI随着质量流量的降低而转移到旋转框架中的较低频带。数值流场的细节表明RI与尖端泄漏流(TLF)的振荡同步地发展。尖端泄漏涡流(TLV)在相邻叶片的压力表面侧通过诱导的涡流形成低静压。它变化了尖端空气动力装载。尖端气动负荷和TLF都随着质量流量的降低而变强。较强的TLV将在相邻刀片的压力表面侧附近形成更强的涡流,并将诱导的涡旋推向朝向刀片的前缘。当高尖端气动加载区域受到压力表面侧附近的诱导涡流的影响时,下一段中的TLF的强度将被削弱。然后,TLF波动并导致相邻刀片尖端气动负载的振动以及从相邻刀片发出的TLF的振动。这种影响过程的圆周传播导致RI。 (c)2020 Elsevier Masson SAS。版权所有。

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