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Effect of film hole geometry and blowing ratio on film cooling performance

机译:薄膜孔几何和吹吹比对薄膜冷却性能的影响

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摘要

In this paper, four kinds of film holes (cylindrical hole, fan-shaped hole, anti-vortex hole and sister hole) are experimentally and numerically studied to investigate the effect of hole geometry and blowing ratio on film cooling performance and flow structure. The blowing ratio ranges from 0.3 to 2.0, the density ratio is 1.065 and the mainstream Reynolds number is 38664. In the experiment, the steady-state Thermoehromie Liquid Crystal (TLC) is applied to obtain the film cooling effectiveness. The numerical investigation is performed to analyze the flow structure and counter-rotating vortex pair (CRVP) intensity. Experimental results show that the sister hole demonstrates best cooling performance with blowing ratio from 0.3 to 1.5. The sister hole provides better cooling performance than anti-vortex hole. While the fan-shaped hole performs better at high blowing ratios and it achieves best at blowing ratio of ZO. Numerical simulation indicates that for the anti-vortex hole and sister hole, the application of side holes can decrease the main hole CRVP intensity and weaken the mixing between the main hole CRVP and mainstream, which increases cooling performance. The coolant interaction between side holes and main hole of the sister hole is stronger than that of the anti-vortex hole.
机译:本文采用了四种薄膜孔(圆柱形孔,扇形孔,抗涡旋孔,姊妹孔),在实验上和数值研究,研究了孔几何形状和吹吹比对薄膜冷却性能和流动结构的影响。吹出比率范围为0.3至2.0,密度比为1.065,主流雷诺数为38664.在实验中,施加稳态热液液晶(TLC)以获得薄膜冷却效果。进行数值研究,分析流动结构和反向旋转涡流对(CRVP)强度。实验结果表明,姐妹孔展示了最佳的冷却性能,吹出比率为0.3至1.5。姐妹洞提供比反涡旋孔更好的冷却性能。虽然扇形孔以高吹气比率更好地表现出更好的,但它以ZO的吹气比达到最佳。数值模拟表明,对于防涡孔和姐妹孔,侧孔的施加可以降低主孔CRVP强度,并削弱主孔CRVP和主流之间的混合,这提高了冷却性能。姐妹孔的侧孔和主孔之间的冷却剂相互作用比抗涡旋孔更强。

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