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SELF-REGULATING CASING TREATMENT FOR AXIAL COMPRESSOR STABILITY ENHANCEMENT

机译:轴向压缩机稳定性的自调节式套管处理

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The operating range of an axial compressor is often restricted by a safety imposed stall margin. One possible way of regaining operating range is with the application of casing treatment. Of particular interest here is the type of casing treatment which extracts air from a high pressure location in the compressor and re-injects it through discrete loops into the rotor tip region. Existing re-circulation systems have the disadvantage of reducing compressor efficiency at design conditions because worked flow is unnecessarily re-circulated at these operating conditions. Re-circulation is really only needed near stall. This paper proposes a self-regulating casing treatment in which the re-circulated flow is minimized at compressor design conditions and maximized near stall. The self-regulating capability is achieved by taking advantage of changes which occur in the tip clearance velocity and pressure fields as the compressor is throttled toward stall. In the proof-of-concept work reported here, flow is extracted from the high pressure region over the rotor tips and re-injected just upstream of the same blade row. Parametric studies are reported in which the flow extraction and re-injection ports are optimized for location, shape and orientation. The optimized design is shown to compare favorably with a circumferential groove tested in the same compressor. The relationship between stall inception type and casing treatment effectiveness is also investigated. The self-regulating aspect of the new design works well: stall margin improvements from 2.2 to 6.0% are achieved for just 0.25% total air re-circulated near stall and half that near design conditions. The self-regulating capability is achieved by the selective location and orientation of the extraction hole; a simple model is discussed which predicts the optimum axial location.
机译:轴向压缩机的工作范围通常受到安全性失速裕度的限制。重新获得工作范围的一种可能方法是应用套管处理。在此特别感兴趣的是一种套管处理类型,它从压缩机的高压位置抽出空气,然后通过离散的回路将其重新注入到转子的尖端区域。现有的再循环系统具有在设计条件下降低压缩机效率的缺点,因为在这些操作条件下工作流不必要地再循环。实际上,仅在失速附近才需要重新循环。本文提出了一种自调节式套管处理方法,其中在压缩机设计条件下使再循环流量最小,在失速附近最大化。通过利用随着压缩机向失速节流而在叶尖间隙速度和压力场中发生的变化来实现自调节能力。在此处报告的概念验证工作中,流量是从转子尖端上方的高压区域抽出的,并在同一叶片行的上游重新注入。报告了参数研究,其中针对位置,形状和方向优化了抽气和回注端口。最佳化设计显示与在同一台压缩机上测试的周向槽相比具有优势。还研究了失速开始类型与套管处理效果之间的关系。新设计的自调节方面效果很好:将失速附近的总空气再循环量仅为0.25%,将接近设计条件的一半的总空气再循环率从2.2%提高到6.0%。通过调节抽气孔的位置和方向来实现自我调节能力。讨论了预测最佳轴向位置的简单模型。

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