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SURROGATE BASED DESIGN OPTIMISATION OF COMBUSTOR TILE COOLING FEED HOLES

机译:基于代理的设计优化燃烧器瓷砖冷却料孔

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Gas turbine operating temperatures are projected to continue to increase and this leads to drawing more cooling air to keep the metals below their operational temperatures. This cooling air is chargeable as it has gone through several stages of compressor work. In this paper a surrogate based design optimization approach is used to reduce cooling mass flow on combustor tiles to attain pre-defined maximum metal surface temperatures dictated by different service life requirements. A series of Kriging based surrogate models are constructed using an efficient GPU based particle swarm algorithm. Various mechanical and manufacturing constraints such as hole ligament size, encroachment of holes onto other features like side rails, pedestals, dilution ports and retention pins etc. are built into the models and these models are trained using a number of high fidelity simulations. Furthermore these simulations employ the proprietary Rolls-Royce Finite Element Analysis (FEA) package SCO3 to run thermal analysis predicting surface heat transfer coefficients, fluid temperatures and finally metal surface temperatures. These temperature predictions are compared against the pre-defined surface temperature limits for a given service life and fed back to the surrogate model to run for new hole configuration. This way the loop continues until an optimized hole configuration is attained. Results demonstrate the potential of this optimization technique to improve the life of combustor tile by reducing tile temperature and also to reduce the amount of cooling air required.
机译:燃气轮机操作温度突出以继续增加,这导致更多的冷却空气以将金属保持在其运行温度下方。这种冷却空气随着压缩机工作的几个阶段而充电。在本文中,基于代理的设计优化方法用于减少燃烧器瓦片上的冷却质量流动,以获得通过不同的使用寿命要求决定的预定义最大金属表面温度。使用基于GPU的粒子群算法构建了一系列基于Kriging的代理模型。诸如孔韧带尺寸的各种机械和制造限制,孔侵蚀到侧轨,基座,稀释端口和保留引脚等其他特征上,内置于模型中,并且这些型号使用许多高保真模拟训练。此外,这些模拟采用专有的辊罗币有限元分析(FEA)包装SCO3来运行预测表面传热系数,流体温度和最终金属表面温度的热分析。将这些温度预测与给定的使用寿命的预定义的表面温度限制进行比较,并反馈给代理模型以用于新孔配置。以这种方式,环继续直到获得优化的孔配置。结果证明了这种优化技术通过减少瓷砖温度来改善燃烧器瓦片的寿命,以及减少所需的冷却空气量。

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