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Study of Convective Flow Effects in Endwall Casing Treatments in Transonic Compressor Rotors

机译:跨音速压气机转子端壁套管处理中对流流动效应的研究

摘要

The unsteady convective flow effects in a transonic compressor rotor with a circumferential-groove casing treatment are investigated in this paper. Experimental results show that the circumferential-groove casing treatment increases the compressor stall margin by almost 50% for the current transonic compressor rotor. Steady flow simulation of the current casing treatment, however, yields only a 15% gain in stall margin. The flow field at near-stall operation is highly unsteady due to several self-induced flow phenomena. These include shock oscillation, vortex shedding at the trailing edge, and interaction between the passage shock and the tip clearance vortex. The primary focus of the current investigation is to assess the effects of flow unsteadiness and unsteady flow convection on the circumferential-groove casing treatment. Unsteady Reynolds-averaged Navier-Stokes (URANS) and Large Eddy Simulation (LES) techniques were applied in addition to steady Reynolds-averaged Navier-Stokes (RANS) to simulate the flow field at near-stall operation and to determine changes in stall margin. The current investigation reveals that unsteady flow effects are as important as steady flow effects on the performance of the circumferential grooves casing treatment in extending the stall margin of the current transonic compressor rotor. The primary unsteady flow mechanism is unsteady flow injection from the grooves into the main flow near the casing. Flows moving into and out of the grooves are caused due to local pressure difference near the grooves. As the pressure field becomes transient due to self-induced flow oscillation, flow injection from the grooves also becomes unsteady. The unsteady flow simulation shows that this unsteady flow injection from the grooves is substantial and contributes significantly to extending the compressor stall margin. Unsteady flows into and out of the grooves have as large a role as steady flows in the circumferential grooves. While the circumferential-groove casing treatment seems to be a steady flow device, unsteady flow effects should be included to accurately assess its performance as the flow is transient at near-stall operation.
机译:本文研究了跨槽式跨音速压缩机转子的非稳态对流流动效应。实验结果表明,对于当前的跨音速压缩机转子,周向沟槽套管处理将压缩机失速裕度提高了近50%。但是,当前套管处理的稳流模拟只能使失速裕度提高15%。由于几种自感应流动现象,接近失速运行时的流场非常不稳定。这些因素包括激波振荡,后缘的涡旋脱落以及通道激波和尖端间隙涡旋之间的相互作用。当前研究的主要重点是评估流动不稳定和不稳定流动对流对周向槽套管处理的影响。除了稳态的雷诺平均的Navier-Stokes(RANS)之外,还应用了非稳态的雷诺平均的Navier-Stokes(URANS)和大涡模拟(LES)技术来模拟接近失速运行时的流场并确定失速裕度的变化。目前的研究表明,在扩展当前跨音速压缩机转子的失速裕度方面,非稳态流动影响与稳态流动影响对周向槽套管处理的性能同样重要。主要的非稳态流动机制是从凹槽向壳体附近的主流注入非稳态流动。由于凹槽附近的局部压力差而导致流入和流出凹槽的流。由于自激流动引起的压力场瞬变时,从槽中注入的流动也变得不稳定。非稳态流动模拟表明,从沟槽中注入的这种非稳态流动是相当大的,并且对延长压缩机失速裕度有很大贡献。流入和流出凹槽的不稳定流动与圆周凹槽中的稳定流动一样重要。尽管周向槽套管处理似乎是一种稳定的流量装置,但当流量在失速附近运行时是瞬态流动时,应包括不稳定流量效应以准确评估其性能。

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