首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >THE INFLUENCE OF PURGE FLOW PARAMETERS ON HEAT TRANSFER AND FILM COOLING IN TURBINE CENTER FRAMES
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THE INFLUENCE OF PURGE FLOW PARAMETERS ON HEAT TRANSFER AND FILM COOLING IN TURBINE CENTER FRAMES

机译:吹扫流动参数对汽轮机中心框架传热和薄膜冷却的影响

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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.
机译:由于环境立法严格和燃料成本的增加,现代涡扇发动机的效率必须进一步改善。通常,通过增加涡轮机部件的过量熔点的涡轮机入口温度来促进这一点。这种趋势已经达到了不仅高压涡轮机必须充分冷却的点,而且还达到了发动机中进一步下游的组件。这种组件是涡轮中心框架(TCF),具有复杂的空气动力学流场,该流动场也受到清除-MainStream相互作用的高度影响。吹扫空气通过上游高压涡轮机的轮孔空腔注入,对TCF具有显着的冷却电位。尽管如此,仍然缺少对热传递和薄膜冷却的影响参数的基础知识。本文研究了吹扫到主流吹出比,吹扫到主流密度比和吹扫流动旋流角对TCF中的对流传热系数和薄膜冷却效果的影响。该实验在扇形级联试验台中进行,专门用于使用红外热成像和量身定制的柔性加热箔具有恒定热通量的这种传热研究。入口流动的特征在于径向穿过五孔探针。调查了三个吹扫到主流的吹风比和额外的净化案例。注入吹扫流程而没有涡流,也具有发动机类似的旋流角度。吹扫旋流和吹出比显着影响TCF中薄膜冷却的幅度和扩散,增加吹吹量导致传热的强化。通过冷却吹扫流动,研究了吹扫到主流密度比的中等变化,发现影响可忽略不计。

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