横流涡发生器扇形孔气膜冷却性能的实验研究与优化设计

Jie Wang, Chaomo Zhang, X. Liu, Liming Song, Jun Li, Z. Feng
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摘要

为了研究横流和涡发生器对扇形孔气膜冷却特性的影响,采用红外摄像机对气膜冷却性能进行了实验测量。吹气比固定在0.5和1.5。基于孔径的主流雷诺数保持在7000,横流入口雷诺数为40000。实验结果表明,各模型吹气比从0.5增大到1.5时,气膜冷却性能变好,受横流影响气膜冷却性能变差。当吹气比为1.5时,由于横流的影响,带涡发生器的扇形孔模型的面积平均气膜冷却效率降低了16.6%。在各种工况下,组合模型均优于不加涡发生器的模型。当吹气比为1.5时,在横流的影响下,组合模型的面积平均气膜冷却效率比不加涡流发生器的模型提高了14.8%。为进一步提高气膜冷却性能,将基于Kriging方法的全局优化算法与CFD技术相结合,对高吹风比横流条件下的组合模型进行了优化,并通过实验对优化设计进行了验证。实验结果表明,与参考模型相比,优化设计的面积平均气膜冷却效率提高了17.8%。
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Experimental Investigation and Optimal Design on the Film Cooling Performance of Fan-Shaped Hole With Vortex Generator Fed by Crossflow
Aiming at investigating the effects of crossflow and vortex generator on film cooling characteristics of fan-shaped hole, the film cooling performance was measured experimentally by infrared camera. The blowing ratio is fixed at 0.5 and 1.5. The Reynolds number of the mainstream based on the hole diameter remains at 7000 and the inlet Reynolds number of crossflow is 40000. The experimental results show that the film cooling performance becomes better when the blowing ratio increases from 0.5 to 1.5 for each model, and the film cooling performance becomes worse under the influence of crossflow. When the blowing ratio is 1.5, the area-averaged film cooling effectiveness of the fan-shaped hole model with vortex generator decreases by 16.6% because of the influence of crossflow. The combined model always performs better compared with the model without vortex generator under all working conditions. When the blowing ratio becomes 1.5, under the influence of crossflow, the area-averaged film cooling effectiveness of the combined model could increase by 14.8%, compared with the model without vortex generator. To further improve the film cooling performance, the global optimization algorithm based on the Kriging method and the CFD technology are coupled to optimize the combined model under crossflow condition at the high blowing ratio, and the optimized design is verified by experiments. The experimental results show that the area-averaged film cooling effectiveness of the optimized design increases by 17.8% compared with the reference model.
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