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Effect of purge flow on endwall flow and heat transfer characteristics of a gas turbine blade

机译:吹扫流量对燃气轮机叶片端壁流量和传热特性的影响

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This paper presents a numerical investigation on the influence of purge flow on endwall flow and heat transfer characteristics of a gas turbine blade. Upon the numerical validation with experiment data, the Reynolds-averaged Navier-Stokes equations coupled with standard k-omega turbulence model are utilized in this study. Five mass flow ratios (MFR) of the purge flow (MFR = 0.5%, 0.75%, 1.0%, 1.25%, 1.5%) and four ejection angles a of the upstream slot (alpha = 30 degrees, 45 degrees, 60 degrees, 90 degrees) are selected to investigate the effects of purge flow on endwall flow structure and their thermal behaviors. The results indicate that the purge flow provides some cooling effectiveness and increases the heat transfer on the endwall. The reduction of the ejection angle cc improves the film cooling effectiveness and increases the heat transfer coefficient of the endwall. The averaged film cooling effectiveness of the endwall is reduced by 53.4% and the heat transfer coefficient at the leading edge is increased by 18.89% when the ejection angle a is increased from 30 degrees to 90 degrees at MFR = 1.5%. Comparing to another case without purge flow, the purge flow increases the aerodynamic losses, and as the increasing of MFR, the aerodynamic losses is increased first and reduced afterwards, obtaining the largest aerodynamic losses at MFR = 1.0% for the ejection angle alpha = 30 degrees. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文对吹扫流量对燃气轮机叶片端壁流量和传热特性的影响进行了数值研究。在通过实验数据进行数值验证后,本研究采用了雷诺平均Navier-Stokes方程与标准k-ω湍流模型相结合的方法。吹扫流量的五个质量流量比(MFR = 0.5%,0.75%,1.0%,1.25%,1.5%)和上游狭槽的四个喷射角a(alpha = 30度,45度,60度,选择90度角以研究吹扫流对端壁流结构的影响及其热行为。结果表明,吹扫流提供了一定的冷却效果,并增加了端壁上的热传递。喷射角cc的减小提高了膜的冷却效率并增加了端壁的传热系数。在MFR = 1.5%时,当喷射角α从30度增加到90度时,端壁的平均薄膜冷却效率降低了53.4%,前缘的传热系数提高了18.89%。与没有吹扫流量的另一种情况相比,吹扫流量会增加空气动力损失,并且随着MFR的增加,空气动力损失会先增加然后减少,在喷射角α= 30的MFR = 1.0%时获得最大的空气动力损失。度。 (C)2016 Elsevier Ltd.保留所有权利。

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