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SELF-EXCITED BLADE VIBRATION EXPERIMENTALLY INVESTIGATED IN TRANSONIC COMPRESSORS - ACOUSTIC RESONANCE

机译:在跨音速压缩机 - 声谐振中实验研究的自我激动的刀片振动 - 声谐振

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This paper investigates the acoustically induced rotor blade vibration that occurred in a state-of-the-art 1.5-stage transonic research compressor. The compressor was designed with the unconventional goal to encounter self-excited blade vibration within its regular operating domain. Despite the design target to have the rotor blades reach negative aerodamping in the near stall region for high speeds and open inlet guide vane, no vibration occurred in that area prior to the onset of rotating stall. Self-excited vibrations were finally initiated when the compressor was operated at part speed with fully open inlet guide vane along nominal and low operating line. The mechanism of the fluid-structure-interaction behind the self-excited vibration is identified by means of unsteady compressor instrumentation data. Experimental findings point towards an acoustic resonance originating from separated flow in the variable inlet guide vanes. A detailed investigation based on highly resolved wall pressure data confirms this conclusion. The paper documents the spread in aerodynamic damping calculated by various partners with their respective aeroelastic tools for a single geometry and speed line. This significant spread proves the need for calibration of aeroelastic tools to reliably predict blade vibration. The paper contains a concise categorization of flow induced blade vibration and defines criteria to quickly distinguish the different types of blade vibration. It further gives a detailed description of a novel test compressor and thoroughly investigates the encountered rotor blade vibration.
机译:本文研究了在最先进的1.5级跨音速研究压缩机中发生的声学诱导的转子叶片振动。压缩机设计有非传统目标,可以在其常规操作域内遇到自我激励的刀片振动。尽管设计目标具有转子叶片在近档区域中达到负喷雾器,但是对于高速和开口入口导向叶片,在该区域之前没有发生振动在旋转失速之前。当压缩机以沿标称和低操作线的完全开口入口导向叶片操作时,最终启动自激振动。通过不稳定的压缩机仪表数据识别自激振动背后的流体结构相互作用的机理。实验结果朝向可变入口导向叶片中的分离流的声谐振点。基于高度分辨的墙压数据的详细调查证实了这一结论。本文通过各自的各自的空气弹性工具来介绍了各种伴侣的空气动力学阻尼的涂抹,用于单个几何和速度线。这一重大传播证明了需要校准空气弹性工具以可靠地预测叶片振动。本文包含了一种简洁的流动感应刀片振动分类,并定义了快速区分不同类型的叶片振动的标准。它还进一步提供了一种新型测试压缩机的详细描述,并彻底研究了遇到的转子叶片振动。

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