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Integrated Combustor and Vane Concept in Gas Turbines

机译:燃气轮机中的集成燃烧器和叶片概念

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This paper numerically investigates the interaction between multiple can combustors and the first vane in an industrial gas turbine with 16 can combustors and 32 vanes in order to find ways of reducing the overall cooling requirements. Two promising concepts for the overall cooling reduction are presented. In the first, by minimizing the axial distance between the combustor wall and the vane, the stagnation region at the leading edge (LE) of every second vane can be effectively shielded from the hot mainstream gases. The LE shielding allows continuous cooling slots to be used (as an alternative to discrete cooling holes) to cool the downstream parts of the vane using a portion of the saved LE showerhead cooling air. The second concept proposes a full combustor and first vane integration. In this novel concept the number of vanes is halved and the combustor walls are used to assist the flow turning. All remaining vanes are fully integrated into the combustor walls. In this way the total wetted area of the integrated system is reduced, and by shielding the LEs of the remaining vanes the total amount of cooling air can be reduced. The proposed combustor and first vane integration does not detrimentally affect the aerodynamics of the combustor and vane system. The concept also simplifies the design and should lower the manufacturing costs.
机译:本文通过数值研究了具有16个筒形燃烧器和32个叶片的工业燃气轮机中多个筒形燃烧器与第一个叶片之间的相互作用,以寻求降低总体冷却需求的方法。提出了两种有希望的总体冷却降低方案。首先,通过最小化燃烧器壁与叶片之间的轴向距离,可以有效地使每两个叶片的前缘(LE)处的停滞区域免受高温主流气体的影响。 LE防护罩允许使用连续的冷却槽(作为分立的冷却孔的替代方法),以使用一部分节省的LE莲蓬头冷却空气来冷却叶片的下游部分。第二个概念提出了一个完整的燃烧室和第一个叶片集成方案。在这个新颖的概念中,叶片的数量减半,并且燃烧室壁用于辅助流动转向。所有其余的叶片都完全集成到燃烧室壁中。这样,减少了集成系统的总湿润面积,并且通过屏蔽其余叶片的LE,可以减少冷却空气的总量。所提出的燃烧器和第一叶片的集成不会不利地影响燃烧器和叶片系统的空气动力学。该概念还简化了设计并应降低制造成本。

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