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Effect of Tip Clearance Dimensions and Control of Unsteady Flows in a Multi-Stage High-Pressure Compressor

机译:多级高压压缩机叶尖间隙尺寸的影响和非恒定流的控制

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摘要

This paper describes the investigations performed to better understand unsteady flows that develop in a three-stage high-pressure compressor. More specifically, this study focuses on rotor-stator interactions and tip leakage flow effects on overall performance and aerodynamic stability. The investigation method is based on three-dimensional unsteady RANS simulations, considering the natural spatial periodicity of the compressor. Indeed, all information related to rotor-stator interactions can be computed. A comparison is first done with experimental measurements to outline the capacity of the numerical method to predict overall performance and unsteady flows. The results show that the simulation correctly estimates most flow features in the multistage compressor. Then numerical data obtained for three configurations of the same compressor are analyzed and compared. Configurations 1 and 2 consider two sets of tip clearance dimensions and a casing treatment based on a honeycomb design is applied for configuration 3. Detailed investigations of the flow at the same operating line show that the tip leakage flow is responsible for the loss of stability in the last stage. An increase by 30% of the tip clearance dimension dramatically reduces the stable operating range (by 40% with respect to the standard configuration). A modal analysis shows that the stall process in this case involves the perturbation of the flow in the last rotor by upstream stator wakes, leading to the development of a rotating instability. The control device designed and investigated in this study allows for reducing the sensitivity of the compressor to tip leakage flow by recovering the initial stable operating range.
机译:本文介绍了为更好地了解三级高压压缩机中产生的非稳态流动而进行的研究。更具体地说,本研究的重点是转子-定子相互作用以及叶尖泄漏流对整体性能和空气动力学稳定性的影响。考虑到压缩机的自然空间周期性,该研究方法基于三维非稳态RANS模拟。实际上,可以计算与转子-定子相互作用有关的所有信息。首先通过实验测量进行比较,以概述数值方法预测整体性能和不稳定流量的能力。结果表明,该模拟正确估计了多级压缩机中的大多数流动特征。然后,分析和比较从同一压缩机的三种配置获得的数值数据。配置1和2考虑了两组尖端间隙尺寸,并且在结构3中采用了基于蜂窝设计的套管处理。对同一工作线处的流量进行的详细研究表明,尖端泄漏流是造成系统稳定性损失的原因。最后阶段。尖端间隙尺寸增加30%会极大地减少稳定的工作范围(相对于标准配置,降低了40%)。模态分析表明,在这种情况下,失速过程涉及上游定子尾流对最后一个转子中流体的扰动,从而导致旋转不稳定性的发展。在本研究中设计和研究的控制设备可通过恢复初始稳定工作范围来降低压缩机对叶尖泄漏流的敏感性。

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  • 来源
    《Journal of turbomachinery》 |2012年第5期|p.051005.1-051005.13|共13页
  • 作者单位

    CERFACS, Computational Fluid Dynamics Team, 42, avenue Gaspard Coriolis, Toulouse, F-31057, France;

    CERFACS, Computational Fluid Dynamics Team, 42, avenue Gaspard Coriolis, Toulouse, F-31057, France;

    Laboratoire de Mecanique des Fluides et d'Acoustique, UMR CNRS 5509, Ecole Centrale Lyon, 36 avenue Guy de Collongue, Ecully, F-69130, France;

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