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CONTROL OF SHORT LENGTH-SCALE ROTATING STALL INCEPTION ON A HIGHSPEED AXIAL COMPRESSOR WITH PLASMA ACTUATION

机译:等离子体驱动的高速轴流压缩机短尺度旋转失速控制

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This paper presents a computational assessment of the use of Single Dielectric Barrier Discharge (SDBD), or plasma, actuators for the suppression of short-length scale (spike) stall inception in a transonic axial compressor. Casing plasma actuation has the potential to provide a robust and effective stall suppression device without compromising compressor performance. The objective of this work is to determine the optimum actuator location and actuation strength needed to suppress spike stall inception at transonic speeds without imposing a penalty on compressor performance. This is done through the implementation of an actuator model in a turbomachinery CFD code for simulations of a transonic research compressor rotor passage to measure the effectiveness of casing plasma actuation in delaying the tip clearance flow criteria that are believed to lead to the formation of spike disturbances. Results show that the casing plasma actuator should be positioned near the rotor leading edge so as to optimize the impact on the interface between the incoming and tip clearance flows as well as for practical consideration. Simulations also indicate that the required actuator strength is higher than that of typical SDBD actuators while still remaining within practical achievable limits. These results will form the basis for experimental validation of the concept in the corresponding research compressor rig in the near future.
机译:本文介绍了在跨音速轴流式压缩机中使用单电介质势垒放电(SDBD)或等离子作动器来抑制短尺度(尖峰)失速开始的计算评估。壳体等离子致动有可能提供一种坚固而有效的失速抑制装置,而不会影响压缩机的性能。这项工作的目的是确定在不影响压缩机性能的情况下,抑制跨音速下的尖峰失速开始所需的最佳致动器位置和致动强度。这是通过在涡轮机械CFD代码中实现执行器模型来实现的,该执行器模型用于模拟跨音速研究型压缩机转子通道,以测量套管等离子致动在延迟尖端间隙流量标准方面的有效性,认为该准则会导致尖峰干扰的形成。结果表明,套管等离子致动器应放置在转子前缘附近,以优化对进入间隙和叶尖间隙流之间的界面的影响,并进行实际考虑。仿真还表明,所需的执行器强度高于典型的SDBD执行器,同时仍保持在实际可达到的范围内。这些结果将为在不久的将来在相应的研究型压缩机装置中对该概念进行实验验证奠定基础。

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