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UNSTEADY AERODYNAMICS AND INTERACTIONS BETWEEN A HIGH PRESSURE TURBINE VANE AND ROTOR

机译:高压涡轮叶片和转子之间的不稳定空气动力学和相互作用

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A set of experimental data is presented investigating the unsteady aerodynamics associated with a high pressure turbine vane (HPV) and rotor blade (HPB). The data was acquired at the Turbine Research Facility (TRF) of the Air Force Research Laboratory. The TRF is a transient, blowdown facility generating several seconds of experimental data on full scale engine hardware at scaled turbine operating conditions simulating an actual engine environment. The pressure ratio and freestream Reynolds number were varied for this investigation. Surface unsteady pressure measurements on the HPV, total pressure traverse measurements downstream of the vane, and surface unsteady pressure measurements for the rotor blade were obtained. The unsteady content of the HPV surface was generated by the rotor potential field. The first harmonic decayed more rapidly than the second harmonic with a movement upstream causing the second harmonic to be most influential at the vane throat. The blade unsteadiness appears to be caused by a combination of shock, potential field, and vane wake interactions between the vane and rotor blade. The revolution averaged data resulted in higher unsteadiness than a passing ensemble average for both vane and rotor indicating a need to understand each passage for high cycle fatigue (HCF) effects.
机译:提出了一组实验数据,研究了与高压涡轮叶片(HPV)和转子叶片(HPB)相关的不稳定空气动力学。该数据是在空军研究实验室的涡轮机研究设施(TRF)的中获取。 TRF是瞬态排污设施,在模拟实际发动机环境的缩放涡轮机操作条件下为全尺寸发动机硬件产生几秒钟的实验数据。对这次调查有所不同的压力比和FreeStream雷诺数。 HPV上的表面不稳定压力测量,获得叶片下游的总压力横向测量,以及转子叶片的表面不稳定的压力测量。通过转子电位场产生HPV表面的不稳定含量。第一个谐波比第二次谐波更快地衰减,上游运动使第二次谐波在叶片喉部最有影响力。叶片不稳定性似乎是由叶片和转子叶片之间的冲击,电位场和叶片唤醒相互作用的组合引起的。革命平均数据导致叶片和转子的通过整体平均值更高,指示需要了解高循环疲劳(HCF)效果的每个通道。

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