Implementation of Hole-Pair in Ramp to Improve Film Cooling Effectiveness on a Plain Surface

S. Hussain, Xin Yan
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Abstract

Film cooling is one of the most critical technologies in modern gas turbine engine to protect the high temperature components from erosion. It allows gas turbines to operate above the thermal limits of blade materials by providing the protective cooling film layer on outer surfaces of blade against hot gases. To get a higher film cooling effect on plain surface, current study proposes a novel strategy with the implementation of hole-pair into ramp. To gain the film cooling effectiveness on the plain surface, RANS equations combined with k-ω turbulence model were solved with the commercial CFD solver ANSYS CFX11.0. In the numerical simulations, the density ratio (DR) is fixed at 1.6, and the film cooling effect on plain surface with different configurations (i.e. with only cooling hole, with only ramp, and with hole-pair in ramp) were numerically investigated at three blowing ratios M = 0.25, 0.5, and 0.75. The results show that the configuration with Hole-Pair in Ramp (HPR) upstream the cooling hole has a positive effect on film cooling enhancement on plain surface, especially along the spanwise direction. Compared with the baseline configuration, i.e. plain surface with cylindrical hole, the laterally-averaged film cooling effectiveness on plain surface with HPR is increased by 18%, while the laterally-averaged film cooling effectiveness on plain surface with only ramp is increased by 8% at M = 0.5. As the blowing ratio M increases from 0.25 to 0.75, the laterally-averaged film cooling effectiveness on plain surface with HPR is kept on increasing. At higher blowing ratio M = 0.75, film cooling effectiveness on plain surface with HPR is about 19% higher than the configuration with only ramp.
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坡道孔对的实现以提高平坦表面的气膜冷却效率
气膜冷却是现代燃气涡轮发动机中保护高温部件免受侵蚀的关键技术之一。它通过在叶片外表面提供防止热气体的保护冷却膜层,使燃气轮机在叶片材料的热极限以上运行。为了在平坦表面获得更高的气膜冷却效果,本研究提出了一种新的策略,即在斜坡上实施孔对。为了获得平坦表面的气膜冷却效果,结合k-ω湍流模型,利用商用CFD求解器ANSYS CFX11.0对RANS方程进行求解。在数值模拟中,将密度比(DR)固定为1.6,在3种吹气比M = 0.25、0.5和0.75的情况下,数值研究了不同配置(即只有冷却孔、只有斜坡和斜坡中有孔对)对平面表面的气膜冷却效果。结果表明,在冷却孔上游加装孔对(HPR)对平面表面的气膜冷却有积极的促进作用,尤其是沿展向的效果。在M = 0.5时,与带圆柱孔的平面配置相比,带HPR的平面侧平均气膜冷却效率提高了18%,仅带斜坡的平面侧平均气膜冷却效率提高了8%。随着吹气比M从0.25增加到0.75,HPR平面上的横向平均气膜冷却效率不断提高。在较高的吹气比M = 0.75时,带HPR的平面气膜冷却效果比仅带坡道的平面气膜冷却效果高19%左右。
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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