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首页> 外文期刊>Journal of turbomachinery >Effect of Hole Geometry on the Thermal Performance of Fan-Shaped Film Cooling Holes
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Effect of Hole Geometry on the Thermal Performance of Fan-Shaped Film Cooling Holes

机译:孔几何形状对扇形薄膜冷却孔热性能的影响

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摘要

This study evaluates the impact of typical cooling hole shape variations on the thermal performance of fan-shaped film holes. A comprehensive set of experimental test cases featuring 16 different film-cooling configurations with different hole shapes have been investigated. The shape variations investigated include hole inlet-to-outlet area ratio, hole coverage ratio, hole pitch ratio, hole length, and hole orientation (compound) angle. Flow conditions applied cover a wide range of film blowing ratios M = 0.5 to 2.5 at an engine-representative density ratio DR = 1.7. An infrared thermography data acquisition system is used for highly accurate and spatially resolved surface temperature mappings. Accurate local temperature data are achieved by an in situ calibration procedure with the help of thermocouples embedded in the test plate. Detailed film-cooling effectiveness distributions and discharge coefficients are used for evaluating the thermal performance of a row of fan-shaped film holes. An extensive variation of the main geometrical parameters describing a fan-shaped film-cooling hole is done to cover a wide range of typical film-cooling applications in current gas turbine engines. Within the range investigated, laterally averaged film-cooling effectiveness was found to show only limited sensitivity from variations of the hole geometry parameters. This offers the potential to tailor the hole geometry according to needs beyond pure cooling performance, e.g., manufacturing facilitations.
机译:这项研究评估了典型的冷却孔形状变化对扇形薄膜孔热性能的影响。研究了一组具有16种不同的膜冷却配置,不同的孔形状的综合实验测试用例。研究的形状变化包括孔的进出口面积比,孔的覆盖率,孔的螺距比,孔的长度和孔的取向(复合)角。在发动机代表的密度比DR = 1.7时,施加的流动条件涵盖了大范围的吹膜比M = 0.5至2.5。红外热成像数据采集系统用于高精度和空间分辨的表面温度测绘。借助嵌入在测试板上的热电偶,通过现场校准程序可以获得准确的本地温度数据。详细的薄膜冷却效率分布和排放系数用于评估一排扇形薄膜孔的热性能。描述了扇形薄膜冷却孔的主要几何参数有很大的变化,以涵盖当前燃气涡轮发动机中广泛的典型薄膜冷却应用。在所研究的范围内,发现横向平均的薄膜冷却效率仅显示出有限的灵敏度,不受孔几何参数变化的影响。这提供了根据纯冷却性能之外的需求(例如制造便利性)来根据需要定制孔几何形状的潜力。

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