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Rotating Stall Suppression in Axial Compressors with Casing Plasma Actuation

机译:带套管等离子驱动的轴流压气机中的失速抑制

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摘要

This paper proposes the use of single dielectric barrier discharge, or plasma, actuators to suppress rotating stall inception and extend the stable operating range of axial compressors. Plasma actuators may provide a practical low-power alternative to effectively increase the surge margin of aircraft engines with minimal or even positive impact on compressor performance. A computational study is carried out on a representative subsonic modern compressor rotor geometry to evaluate the proposed casing plasma actuation for suppression of short (spike) as well as long (modal) length-scale rotating stall inception based on their respective flow physics. The objective is to assess the optimum actuator location and required actuation strength to achieve the desired effects at low and medium subsonic compressor speeds. Results show that plasma actuation near the rotor leading edge and concentrated in the tip clearance gap region most effectively suppresses both of the criteria for spike stall inception and delays the predicted stall point to a lower flow coefficient with relatively low power input In addition, the observed increase in rotor pressure-rise characteristic from the proposed actuation means that the concept, with a new suggested actuator modification, can also be used to suppress modal stall inception. The simulations indicate that actuation effectiveness decreases with increasing rotor tip speed, that the required actuator strength scales with this speed, and that stronger actuation strength than that of conventional single dielectric barrier discharge plasma actuators may be needed. Some implications for the practical implementation of this concept on real compressors are also discussed.
机译:本文提出使用单电介质阻挡层放电或等离子致动器来抑制旋转失速开始并扩大轴向压缩机的稳定工作范围。等离子致动器可以提供一种实用的低功率替代方案,以有效地提高飞机发动机的喘振裕度,而对压缩机性能的影响则微乎其微。对具有代表性的亚音速现代压缩机转子几何形状进行了计算研究,以根据其各自的流场物理特性,对拟议的套管等离子驱动器进行评估,以抑制短(尖峰)和长(模态)长度尺度旋转失速。目的是评估最佳致动器位置和所需的致动强度,以在低和中等亚音速压缩机速度下获得所需的效果。结果表明,在转子前缘附近并集中在尖端间隙区域中的等离子致动最有效地抑制了尖峰失速开始的两个标准,并且在相对较低的功率输入下将预测的失速点延迟到较低的流量系数。所提出的致动装置增加了转子的压力上升特性,这意味着,通过对执行机构进行新的修改,该概念也可用于抑制模态失速开始。仿真表明,致动效率随着转子叶尖速度的增加而降低,所需的致动器强度随该速度成比例增加,并且可能需要比传统的单电介质势垒放电等离子体致动器更强的致动强度。还讨论了在实际压缩机上实际实施此概念的一些含义。

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  • 来源
    《Journal of propulsion and power》 |2010年第4期|P.808-818|共11页
  • 作者

    Huu Due Vo;

  • 作者单位

    Ecole Polytechnique de Montreal, Montreal, Quebec H3T 1J4, Canada Department of Mechanical Engineering, 2900 Boulevard Edouard-Montpetit, 2500 Chemin de Polytechnique, Room C318.9. Member AIAA;

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  • 正文语种 eng
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