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SIMULATIONS OF MULTI-PHASE PARTICLE DEPOSITION ON ENDWALL FILM-COOLING HOLES IN TRANSVERSE TRENCHES

机译:横向槽中端壁膜冷却孔的多相颗粒沉积模拟

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Integrated gasification combined cycle (IGCC) power plants allow for increased efficiency and reduced emissions as compared to pulverized coal plants. A concern with IGCCs is that impurities in the fuel from the gasification of coal can deposit on turbine components reducing the performance of sophisticated film-cooling geometries. Studies have shown that recessing a row of film-cooling holes in a transverse trench can improve cooling performance; however, the question remains as to whether or not these improvements exist in severe environments such as when particle deposition occurs. Dynamic simulations of deposition were completed using wax injection in a large-scale vane cascade with endwall film-cooling. Endwall cooling effectiveness was quantified in two specific endwall locations using trenches with depths of 0.4D, 0.8D, and 1.2D, where D is the diameter of a film-cooling hole. The effects of trench depth, momentum flux ratio, and particle phase on adiabatic effectiveness were quantified using infrared thermography. Results showed that the 0.8D trench outperformed other geometries with and without deposition on the surface. Deposition of particles reduced the cooling effectiveness by as much as 15% at I = 0.23 with the trenched holes as compared to 30% for holes that were not placed in a transverse trench.
机译:与粉煤电厂相比,集成气化联合循环(IGCC)电厂可提高效率并减少排放。 IGCC的一个问题是,煤气化所产生的燃料中的杂质会沉积在涡轮机部件上,从而降低了复杂的薄膜冷却几何形状的性能。研究表明,在横向沟槽中凹进一排薄膜冷却孔可以提高冷却性能。然而,问题仍然存在,这些改进是否存在于严峻的环境中,例如何时发生颗粒沉积。沉积的动态模拟是通过在端壁膜冷却的大型叶片级联中使用蜡注入完成的。使用深度为0.4D,0.8D和1.2D的沟槽在两个特定的端壁位置量化端壁冷却效果,其中D是薄膜冷却孔的直径。使用红外热像定量分析了沟槽深度,动量通量比和颗粒相对绝热效果的影响。结果表明,无论有无表面沉积,0.8D沟槽的性能均优于其他几何形状。颗粒的沉积使沟槽孔在I = 0.23时的冷却效率降低了15%,而未放置在横向沟槽中的孔则降低了30%。

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