首页> 外文会议>ASME (American Society of Mechanical Engineers) Turbo Expo 2002: Turbomachinery >WAKE, SHOCK AND POTENTIAL FIELD INTERACTIONS IN A 1.5 STAGE TURBINE: PART I: VANE-ROTOR AND ROTOR-VANE INTERACTION
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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级涡轮中的苏醒,电击和势场相互作用: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:研究了由相邻叶片行的存在引起的高压转子叶片周围时间分辨表面压力场​​的组成,并确定了尾流,冲击和势场相互作用的各个影响。考虑了两个测试几何形状:首先,高压涡轮级与天鹅颈式扩压器出口管道相连;第二,相同的高压级,但在下游管道中有叶片。两项测试均以发动机代表的马赫数和雷诺数进行,并且使用安装在HP转子叶片中高流线上的快速响应压力传感器获取实验数据。将结果与流场的时间分辨计算预测进行比较,以帮助解释实验结果并确定计算预测叶片相互作用的准确性。本文分为两部分,第一部分研究上游叶片对转子周围非稳态压力场的影响(叶片-转子相互作用),第二部分研究下游叶片对转子周围非稳态压力场的影响(转子叶片相互作用)。该论文表明,在典型的设计运行条件下,上游叶片排的激波相互作用要比尾流相互作用大一个数量级,而在设计叶片-转子叶片间间隙的情况下,转子的存在会导致强度的周期性增加。叶片后缘震动。发现下游叶片的势场的存在显着影响每个转子通道内的马赫面的下游的转子压力场。

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