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THE EFFECT OF AN UPSTREAM TURBINE ON A LOW-ASPECT RATIO VANE

机译:超涡轮对低比例叶片的影响

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摘要

The interaction between a high-pressure rotor and a downstream vane is dominated by vortex-blade interaction. Each rotor blade passing period two co-rotating vortex pairs, the tip-leakage and upper passage vortex and the lower passage and trailing shed vortex, impinge on, and are cut by, the vane leading edge. In addition to the streamwise vortex the tip-leakage flow also contains a large velocity deficit. This causes the interaction of the tip-leakage flow with a downstream vane to differ from typical vortex blade interaction. This paper investigates the effect these interaction mechanisms have on a downstream vane. The test geometry considered was a low aspect ratio second stage vane located within a S-shaped diffuser with large radius change mounted downstream of a shroudless high-pressure turbine stage. Experimental measurements were conducted at engine-representative Mach and Reynolds numbers, and data was acquired using a fast-response aerodynamic probe upstream and downstream of the vane. Time-resolved numerical simulations were undertaken with and without a rotor tip gap in order to investigate the relative magnitude of the interaction mechanisms. The presence of the upstream stage is shown to significantly change the structure of the secondary flow in the vane and to cause a small drop in its performance.
机译:高压转子和下游叶片之间的相互作用主要由涡流叶片相互作用引起。每个转子叶片通过周期两个同向旋转的涡流对,即叶尖泄漏和上通道涡流以及下通道和尾流涡流,撞击并被叶片前缘切断。除沿流方向的涡流外,尖端泄漏流还包含较大的速度赤字。这导致尖端泄漏流与下游叶片的相互作用不同于典型的涡流叶片相互作用。本文研究了这些相互作用机制对下游叶片的影响。所考虑的测试几何形状是低纵横比的第二级叶片,该叶片位于安装在无护罩高压涡轮级下游的具有大半径变化的S形扩散器内。以发动机代表的马赫数和雷诺数进行实验测量,并使用叶片上游和下游的快速响应气动探头获取数据。为了研究相互作用机制的相对大小,在有或没有转子尖端间隙的情况下进行了时间分辨的数值模拟。显示出上游级的存在显着改变了叶片中二次流的结构,并导致其性能的小幅下降。

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