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Numerical Investigation of Premature Stall in a Non-Tip-Loaded Rotor Caused by Circumferential Groove Casing Treatment

机译:圆周槽套管处理引起的非尖端式转子过早摊位的数值研究

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Casing treatment design and application typically focus on improving stall margin while minimizing efficiency penalty for tip-loaded rotors. When successful casing treatment configurations are found, it often is assumed that their beneficial effects will occur across the whole operating line. Our investigation revealed the effects of casing treatment on the compressor stability in circumstances such as an off-design situation in which the rotor tip becomes unloaded; that is, in which stall originates elsewhere than at the rotor tip. A widely used circumferential groove casing treatment configuration was installed in a non-tip-loaded rotor, and computational fluid dynamics was employed to simulate the internal flow. The numerical results showed that the stall was induced by a detached vortex located at 90% span near the trailing edge, and the grooves near the blade leading edge significantly negatively affected the stall margin. Based on a computational fluid dynamics analysis, it was found that a special flow structure consisting of a spanwise tornadolike separation vortex and a stream of radial underflow establishes a connection between the grooves and the stall-critical detached vortex away from the tip. Our research explained the stall mechanism and showed that the casing treatment does not always have a beneficial or neutral effect on compressor stall margin. On the contrary, it significantly can decrease the stability for non-tip-loaded rotors. Thus for conditions in which the rotor tip becomes unloaded, potential harmful effects of casing treatment on the stability margin need to be considered. (C) 2021 American Society of Civil Engineers.
机译:套管处理设计和应用通常专注于改善失速余量,同时最大限度地降低尖端转子的效率损失。当发现成功的套管处理配置时,通常假设它们在整个操作线上会发生它们的有益效果。我们的调查揭示了套管处理对压缩机稳定性的影响,例如转子尖端卸载的偏离设计情况;也就是说,其中档位在其他地方源于在转子尖端。广泛使用的圆周槽壳体处理配置安装在非尖端加载的转子中,并且采用计算流体动力学来模拟内部流动。数值结果表明,位于后缘附近的90%跨度的分离的涡流引起了停顿,并且叶片前缘附近的凹槽显着影响失速余量。基于计算流体动力学分析,发现由枝条龙卷醇般分离涡流和径向下溢流组成的特殊流动结构在凹槽和延伸关键拆卸涡流之间的连接远离尖端之间的连接。我们的研究解释了失速机制,并表明壳体处理并不总是对压缩机排放余量具有有益或中性的影响。相反,它显着可以降低非尖端加载转子的稳定性。因此,对于转子尖端卸载的条件,需要考虑壳体处理对稳定性边缘的潜在的有害影响。 (c)2021年美国土木工程师协会。

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  • 来源
    《Journal of aerospace engineering》 |2021年第4期|04021032.1-04021032.15|共15页
  • 作者单位

    Tsinghua Univ Sch Aerosp Engn Beijing 100084 Peoples R China;

    Sichuan Prov Airport Grp Co Ltd Chengdu Tianfu Int Airport Chengdu 641400 Peoples R China;

    Tsinghua Univ Sch Aerosp Engn Beijing 100084 Peoples R China;

    Tsinghua Univ Sch Aerosp Engn Beijing 100084 Peoples R China;

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