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HEAT TRANSFER AND FLOW CHARACTERISTICS OF A LEADING EDGE IMPINGEMENT COOLING SYSTEM FOR LOW PRESSURE TURBINE VANES

机译:低压涡轮叶片的前沿冲击冷却系统的传热和流动特性

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An impingement cooling system for the leading edge of a contra-rotating Power Turbine (PT) representative of a small turboshaft engine was investigated experimentally as well as numerically. The PT vane features a very thin leading edge with high curvature and side channels rapidly facing backwards. Constraints on cooling flow consumption and distribution led to a leading edge (LE) configuration with two rows of staggered jets. This particular configuration was experimentally investigated for three different Reynolds numbers around the design point by using a transient liquid crystal technique. Heat transfer results are presented in terms of surface distributions, impingement rows stagnation line local distributions, streamwise distributions along planes over the impingement stagnation points, span averaged streamwise local distributions and surface averaged values, and then compared to available correlations from existing literature. In order to investigate the flow features of this kind of configuration in more detail, a CFD investigation was also conducted. Results from CFD simulations were compared to the experimental data and then used to discuss in detail the main flow features driving the surface heat transfer.
机译:通过实验和数值研究了代表小型涡轮轴发动机的反向旋转动力涡轮(PT)的前缘的冲击冷却系统。 PT叶片的前缘非常薄,具有很高的曲率,侧面通道迅速向后。冷却流消耗和分配的限制导致前缘(LE)配置为两排交错的射流。通过使用瞬态液晶技术,针对设计点附近的三个不同雷诺数,对这种特殊的配置进行了实验研究。根据表面分布,冲击行停滞线局部分布,冲击停滞点沿平面的流向分布,跨度平均流向局部分布和表面平均值来表示传热结果,然后将其与现有文献的可用相关性进行比较。为了更详细地研究这种配置的流动特性,还进行了CFD研究。 CFD模拟的结果与实验数据进行了比较,然后用于详细讨论驱动表面传热的主要流动特征。

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