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AN EXPERIMENTAL STUDY OF VANE CLOCKING EFFECTS ON EMBEDDED COMPRESSOR STAGE PERFORMANCE

机译:叶片阻塞对嵌入式压缩机级性能影响的实验研究

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Previous research has shown that vane clocking, the circumferential indexing of adjacent vane rows with similar vane counts, can be an effective means to increase stage performance, reduce discrete frequency noise, and/or reduce the unsteady blade forces that can lead to high cycle fatigue. The objective of this research was to experimentally investigate the effects of vane clocking in an embedded compressor stage, focusing on stage performance. Experiments were performed in the intermediate-speed Purdue 3-Stage Compressor, which consists of an IGV followed by three stages. The IGV, Stator 1, and Stator 2 vane rows have identical vane counts, and the effects of vane clocking were studied on Stage 2. Much effort went into refining performance measurements to enable the detection of small changes in stage efficiency associated with vane clocking.At design loading, the change in stage efficiency between the maximum and minimum efficiency clocking configurations was 0.27 points. The maximum efficiency clocking configuration positioned the Stator 1 wake at the Stator 2 leading edge. This condition produced a shallower and thinner Stator 2 wake compared to the clocking configuration that located the wake in the middle of the Stator 2 passage. At high loading, the change in Stage 2 efficiency associated with vane clocking effects increased to 1.07 points; however, the maximum efficiency clocking configuration was the case where the Stator 1 wake passed through the middle of the downstream vane passage. Thus, impingement of the upstream vane wake on the downstream vane leading edge resulted in the best performance at design point but provided the lowest efficiency at an off-design condition.
机译:先前的研究表明,叶片计时,即具有相似叶片数的相邻叶片排的周向分度,可以有效地提高工作台性能,减少离散的频率噪声和/或减少不稳定的叶片力,从而导致高周疲劳。 。这项研究的目的是通过实验研究叶片式时钟在嵌入式压缩机级中的作用,重点是级性能。实验是在中速Purdue 3阶段压缩机中进行的,该压缩机由IGV和随后的三个阶段组成。 IGV,定子1和定子2的叶片行具有相同的叶片数,并且在第2阶段研究了叶片计时的影响。在精炼性能测量方面进行了大量工作,以能够检测出与叶片计时相关的阶段效率的微小变化。 在设计加载时,最大效率时钟配置和最小效率时钟配置之间的级效率变化为0.27点。最大效率时钟配置将定子1尾流定位在定子2的前沿。与将定子尾流放置在定子2通道中间的计时结构相比,这种情况产生了更浅,更薄的定子2尾流。在高负载下,与叶片计时效应相关的第2阶段效率的变化增加到1.07点。但是,最大效率计时配置是定子1尾流经过下游叶片通道中间的情况。因此,上游叶片尾流在下游叶片前缘上的撞击导致在设计点具有最佳性能,但在非设计条件下效率最低。

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