首页> 外文会议>ASME Turbine Technical Conference and Exposition >ON THE EFFECT OF AXIAL SPACING BETWEEN ROTOR AND STATOR ONTO THE BLADE VIBRATIONS OF A LOW PRESSURE TURBINE STAGE AT ENGINE RELEVANT OPERATING CONDITIONS
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ON THE EFFECT OF AXIAL SPACING BETWEEN ROTOR AND STATOR ONTO THE BLADE VIBRATIONS OF A LOW PRESSURE TURBINE STAGE AT ENGINE RELEVANT OPERATING CONDITIONS

机译:在发动机相关操作条件下轴向间距在转子与定子之间的轴向间距在低压涡轮机阶段叶片振动中的影响

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In order to achieve the ACARE targets regarding reduction of emissions, it is essential to reduce fuel consumption drastically. Reducing engine weight is supporting this target and one option to reduce weight is to reduce the overall engine length (shorter shafts, nacelle). However, to achieve a reduction in engine length, the spacing between stator and rotor can be minimised, thus changing the rotor blade excitation. Related to the axial spacing, a number of excitation mechanisms with respect to the rotor blading must already be considered during the design process. Based on these facts several setups have been investigated at different engine relevant operating points and axial spacing between the stator and rotor in the subsonic test turbine facility (STTF-AAAI) at the Institute for Thermal Turbomachinery and Machine Dynamics at Graz University of Technology. In order to avoid upstream effects of supporting struts, these struts are located far downstream of the stage which is under investigation. For rotor blade vibration measurements, a novel telemetry system in combination with strain gauges is applied. To the best of the author's knowledge, the present paper is the first report of blade vibration measurements within a rotating system in the area of low pressure turbines under engine relevant operating conditions. In addition, aerodynamic measurements including unsteady flow measurements have been conducted, but will not be presented in this paper. By analysing the flow field, aerodynamic excitation mechanisms can be identified and assigned to the blade vibration. However, this is not presented in this paper. Within this paper, the flow fields are analysed in both upstream and downstream of the turbine stage, visualised for two axial gaps and then compared to the forced response of the blading. Detailed structural dynamic investigations show critical modes during the operation which are identified by the telemetry measurements as well. Finally the influence of the axial spacing regarding the rotor blade excitation and vibration can be elaborated and is prepared to get a better understanding of basic mechanisms. The paper shows that reducing axial spacing is a promising option for reducing engine weight, but aeroelasticity must be carefully taken into account.
机译:为了实现关于减少排放的竞争目标,必须大大降低燃料消耗。减少发动机重量支持该目标,一个选择重量的选项是减少整体发动机长度(较短的轴,机舱)。然而,为了实现发动机长度的减小,可以最小化定子和转子之间的间隔,从而改变转子叶片激发。与轴向间隔有关,必须已经在设计过程中考虑了一些相对于转子叶片的激励机构。基于这些事实,已经在不同发动机相关的发动机相关的操作点和亚音速试验涡轮机构(Sttf-Aaai)的定子和转子之间进行了几种设置,在Graz理工大学的热涡轮机械和机器动态研究所的亚音速试验涡轮机构(STTF-AAAI)之间进行了轴向间隔。为了避免支撑支柱的上游效果,这些支柱位于正在调查的阶段的下游。对于转子叶片振动测量,应用了与应变仪相结合的新型遥测系统。据笔者所知的最佳知识,本文是发动机相关操作条件下低压涡轮机面积的旋转系统内的叶片振动测量的第一报告。此外,已经进行了包括不稳定的流量测量的空气动力学测量,但本文不会呈现。通过分析流场,可以识别空气动力激励机构并分配给叶片振动。但是,本文没有提出这一点。在本文中,在涡轮级的上游和下游分析流场,可视化两个轴向间隙,然后与叶片的强制响应相比。详细的结构动态调查在遥测测量中识别的操作期间显示了临界模式。最后,可以阐述轴向间距对转子叶片激发和振动的影响,并准备好了解基本机制。本文表明,减少轴向间距是减少发动机重量的有希望的选择,但必须仔细考虑空气弹性。

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