Turbine Vane Passage Experiments Documenting Evolution of Secondary Flows With Changes in Combustor Coolant Injection Flowrates

Kedar P. Nawathe, Y. Kim, T. Simon
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Abstract

A secondary flow system with a dominant passage vortex pattern has been observed in many gas turbine vane passage studies in which there is no upstream coolant injection or only near-passage endwall coolant injection (no combustor cooling). However, it was shown in recent studies that combustor coolant introduced upstream of the vane passage changes secondary flow patterns in the passage. This results in a different secondary flow vortex system, called the ‘impingement vortex’ system. It was discussed in recent literature having combustor coolant injection. Until now, there has been no study on how increases in combustor coolant momentum effect transition from the passage vortex system to the impingement vortex system. Such a study is presented in the present paper. Velocity component measurements are taken using a five-hole probe at three axial locations in the vane passage to document secondary flow development throughout the passage. Four combustor coolant flowrate cases are considered along with a comparison case having no coolant injection. It is shown that as the combustor coolant flowrate increases, the passage vortex system weakens and, at a sufficiently high combustor coolant flowrate, the impingement vortex system appears. Knowing the detailed flow physics of this transition between the two secondary flow systems is helpful for turbine thermal designers who wish to understand how secondary flows transport coolant within the turbine vane passage.
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记录二次流随燃烧室冷却剂喷射流量变化的涡轮叶片通道实验
在许多燃气轮机叶片通道研究中,观察到一种主导通道涡型的二次流系统,在这种系统中,没有上游冷却剂注入或只有近通道端壁冷却剂注入(没有燃烧室冷却)。然而,最近的研究表明,在叶片通道上游引入燃烧室冷却剂会改变通道内的二次流型。这就产生了一种不同的二次流涡系统,称为“撞击涡”系统。在最近的文献中讨论了燃烧室冷却剂喷射。到目前为止,还没有关于燃烧室冷却剂动量增加效应如何从通道涡系统过渡到撞击涡系统的研究。本文提出了这样一项研究。在叶片通道的三个轴向位置使用五孔探头进行速度分量测量,以记录整个通道的二次流发展情况。考虑了四种燃烧室冷却剂流量情况以及没有冷却剂喷射的比较情况。结果表明,随着燃烧室冷却剂流量的增加,通道涡系统减弱,当燃烧室冷却剂流量足够大时,通道涡系统出现撞击涡系统。了解两个二次流系统之间这种过渡的详细流动物理对于希望了解二次流如何在涡轮叶片通道内输送冷却剂的涡轮热设计师是有帮助的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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