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Simulation of air/mist cooling in a conjugate, 3-D gas turbine vane with internal passage and external film cooling

机译:带有内部通道和外部薄膜冷却的共轭,3-D燃气轮机叶片中的空气/雾气冷却仿真

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This paper describes a numerical investigation to study the effect of injecting mist (tiny water droplets, micrometers in size) into the cooling airstream to cool down gas turbine vanes. In this study, the conjugate heat transfer method is employed which consists of the simulation of the air/mist fluid flow inside and outside the vanes as well as the heat conduction through the vane body. The complete 3-D vane with internal cooling passages and external film cooling holes on the surface is simulated in a rotational periodic sector. The discrete phase model (DPM) is used to simulate and track the evaporation and movement of the tiny water droplets. The effects of different parameters such as the mist/air ratio (10-20%) and the mist droplets size (20-50 urn) on mist cooling enhancement are investigated. The results show that by using a mist/air ratio of 10%, 15%, and 20% with 20μm droplets size, on the pressure side, a maximum wall temperature reduction of 250 K, 340 K, and 450 K respectively can be achieved. On the suction side, the corresponding maximum wall temperature reductions are 160 K, 260 K, and 360 K, respectively. Using larger droplets of 50 urn did not achieve better cooling enhancement because the droplets were rushed far away from the surface by the acceleration through the film cooling holes. Using the uniform droplet size distribution provides noticeably better cooling enhancement in the first 40% of the vane's height (from the shroud) than the non-uniform droplet size distribution (Rosin-Rammler Distribution) does.
机译:本文介绍了研究将雾(微小水滴,微米)注入冷却气流以冷却燃气涡轮叶片的数值调查。在该研究中,采用共轭传热方法,其包括叶片内外的空气/雾气流体的模拟以及通过叶片主体的热传导。在旋转周期性扇区中模拟具有内部冷却通道和外部膜冷却孔的完整的3-D叶片。离散相模型(DPM)用于模拟和跟踪微小水滴的蒸发和运动。研究了不同参数如雾/空气比(10-20%)和雾液液滴尺寸(20-50瓮)的影响。结果表明,通过使用10%,15%和20%的雾/空气比例,在压力侧,分别可以实现250 k,340 k和450 k的最大壁降低减少。在吸入侧,相应的最大壁式温度降低分别为160 k,260k和360 k。使用较大的50个URN的液滴没有达到更好的冷却增强,因为液滴通过通过薄膜冷却孔的加速度迅速地远离表面。使用均匀的液滴尺寸分布在比不均匀的液滴尺寸分布(松香 - 撞击器分布)中,在叶片的高度(来自护罩)的前40%中提供明显更好的冷却增强。

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