The Influence of Purge Flow Parameters on Heat Transfer and Film Cooling in Turbine Center Frames

Patrick Jagerhofer, M. Patinios, Tobias Glasenapp, E. Göttlich, Federica Farisco
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引用次数: 1

Abstract

Due to stringent environmental legislation and increasing fuel costs, the efficiencies of modern turbofan engines have to be further improved. Commonly, this is facilitated by increasing the turbine inlet temperatures in excess of the melting point of the turbine components. This trend has reached a point where not only the high-pressure turbine has to be adequately cooled, but also components further downstream in the engine. Such a component is the turbine center frame (TCF), having a complex aerodynamic flow field that is also highly influenced by purge-mainstream interactions. The purge air, being injected through the wheelspace cavities of the upstream high-pressure turbine, bears a significant cooling potential for the TCF. Despite this, fundamental knowledge of the influencing parameters on heat transfer and film cooling in the TCF is still missing. This paper examines the influence of purge-to-mainstream blowing ratio, purge-to-mainstream density ratio and purge flow swirl angle on the convective heat transfer coefficient and the film cooling effectiveness in the TCF. The experiments are conducted in a sector-cascade test rig specifically designed for such heat transfer studies using infrared thermography and tailor-made flexible heating foils with constant heat flux. The inlet flow is characterized by radially traversing a five-hole-probe. Three purge-to-mainstream blowing ratios and an additional no purge case are investigated. The purge flow is injected without swirl and also with engine-similar swirl angles. The purge swirl and blowing ratio significantly impact the magnitude and the spread of film cooling in the TCF. Increasing blowing ratios lead to an intensification of heat transfer. By cooling the purge flow, a moderate variation in purge-to-mainstream density ratio is investigated, and the influence is found to be negligible.
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吹扫流动参数对汽轮机中心架传热和气膜冷却的影响
由于严格的环保法规和不断增加的燃料成本,现代涡轮风扇发动机的效率必须进一步提高。通常,这是通过增加涡轮进口温度超过涡轮部件的熔点来实现的。这种趋势已经达到了一个地步,不仅高压涡轮必须得到充分冷却,发动机下游的部件也必须得到充分冷却。这种部件就是涡轮中心架(TCF),它具有复杂的气动流场,并且受清洗-主流相互作用的影响很大。吹扫空气通过上游高压涡轮的轮空腔注入,对TCF具有显著的冷却潜力。尽管如此,对TCF中传热和膜状冷却的影响参数的基本知识仍然缺乏。本文考察了吹净比、吹净比和吹净流旋流角对TCF内对流换热系数和气膜冷却效果的影响。实验是在专门为此类传热研究设计的扇形级联试验台进行的,该试验台使用红外热成像技术和量身定制的具有恒定热流的柔性加热箔。入口气流的特征是径向地穿过一个五孔探头。研究了三种吹扫比和一种额外的无吹扫情况。吹扫流注入没有漩涡,也与发动机相似的漩涡角度。吹扫涡流和吹气比对气膜冷却的大小和扩散有显著影响。增大吹气比会导致传热加剧。通过冷却吹扫流,研究了吹扫与主流密度比的适度变化,发现这种影响可以忽略不计。
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