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Theoretical modelling of hot gas ingestion through turbine rim seals

机译:通过涡轮轮缘密封圈吸入热气的理论模型

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The rim seals of gas turbines are used to prevent or reduce the ingestion of hot mainstream gas into the wheel-space between the turbine rotor and its adjacent stationary casing. The ingestion is caused by local pressure differences between the mainstream and the wheel-space; ingress usually occurs where the mainstream pressure is higher than that in the wheel-space and egress occurs where it is lower. Sealing air, which is supplied to the wheel-space, flows through the seal clearance and joins the mainstream flow. Too much sealing air is inefficient; too little can lead to disastrous consequences.The nozzle guide vanes create three-dimensional (3D) variations in the distribution of pressure in the mainstream annulus and the turbine blades create unsteady effects. Computational fluid dynamics (CFD) is both time-consuming and expensive for these 3D unsteady flows, and engine designers tend to use correlations or simple models to predict ingress. This paper describes the application of simple ‘orifice models’, the analytical solutions of which can be used to calculate the sealing effectiveness of turbine rim seals. The solutions agree well with available data for externally-induced ingress, where the effects of rotation are negligible, for rotationally-induced ingress, where the effects of the external flow are small, and for combined ingress, where the effects of both external flow and rotation are significant.
机译:燃气轮机的轮缘密封件用于防止或减少热的主流气体进入涡轮机转子与其相邻的固定壳体之间的叶轮空间。摄入是由主流和轮空间之间的局部压力差引起的。入口通常发生在主流压力高于轮舱压力的地方,而出口发生在主流压力较低的地方。供给至叶轮空间的密封空气流经密封间隙并进入主流。太多的密封空气效率很低;太少会导致灾难性后果。喷嘴导向叶片会在主流环隙中的压力分布中产生三维(3D)变化,而涡轮叶片会产生不稳定的影响。对于这些3D非恒定流,计算流体动力学(CFD)既耗时又昂贵,并且引擎设计人员倾向于使用相关性或简单模型来预测进入。本文介绍了简单的“孔板模型”的应用,其“解析孔模型”的分析解决方案可用于计算涡轮轮缘密封件的密封效果。这些解决方案与以下方面的可用数据非常吻合:外部影响的旋转可以忽略不计;旋转引起的入口的流量很小;外部流动的影响很小;组合进气口的外部流量和外部流量的影响轮换很重要。

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