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WAKE, SHOCK AND POTENTIAL FIELD INTERACTIONS IN A 1.5 STAGE TURBINE: PART I: VANE-ROTOR AND ROTOR-VANE INTERACTION

机译:1.5阶段涡轮机中的唤醒,冲击和潜在场相互作用:第一部分:叶片 - 转子和转子叶片相互作用

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The composition of the time-resolved surface pressure field around a high-pressure rotor blade caused by the presence of neighboring blade rows is investigated, with the individual effects of wake, shock and potential field interaction being determined. Two test geometries are considered: first, a high-pressure turbine stage coupled with a swan-necked diffuser exit duct; secondly, the same high-pressure stage but with a vane located in the downstream duct. Both tests were conducted at engine-representative Mach and Reynolds numbers, and experimental data was acquired using fast-response pressure transducers mounted on the mid-height streamline of the HP rotor blades. The results are compared to time-resolved computational predictions of the flowfield in order to aid interpretation of experimental results and to determine the accuracy with which the computation predicts blade interaction. The paper is split into two parts, the first investigating the effect of the upstream vane on the unsteady pressure field around the rotor (vane-rotor interaction) and the second investigating the effect of the downstream vane on the unsteady pressure field around the rotor (rotor-vane interaction). The paper shows that at typical design operating conditions shock interaction from the upstream blade row is an order of magnitude greater than wake interaction and that with the design vane-rotor inter-blade gap the presence of the rotor causes a periodic increase in the strength of the vane trailing edge shock. The presence of the potential field of the downstream vane is found to affect significantly the rotor pressure field downstream of the Mach one surface within each rotor passage.
机译:周围引起的相邻叶片列的存在下的高压转子叶片的时间分辨表面压力场​​的组合物进行了研究,与被确定之后,冲击和势场相互作用的单独效果。两个测试的几何形状被认为是:第一,加上一个天鹅颈扩散器出口管道中的高压涡轮机级;其次,相同的高压级而是与位于下游侧导管的叶片。两种试验都在发动机代表马赫和雷诺数进行,并使用安装在HP转子叶片的中间高度流线型快速响应压力传感器被获取实验数据。结果相比,流场的时间分辨计算预测,以帮助对实验结果的解释,并确定与该计算预测叶片相互作用的准确性。纸张被分成两部分,第一部分调查上游叶片上的不稳定压力场围绕转子的效果(叶片转子相互作用)和第二调查下游叶片上的不稳定压力场围绕转子的效果(转子叶片交互)。本文示出了在从上游叶片列典型的设计操作条件休克相互作用是幅值较大的比唤醒相互作用和与该设计叶片转子间叶片间隙的顺序转子的存在导致的强度的周期性增加叶片后缘的冲击。下游叶片的势场的存在被发现显著影响每个转子流路内的马赫一个表面的下游的转子压力场。

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