Reduced-Order Models for Effusion Modelling in Gas Turbine Combustors

S. Paccati, L. Mazzei, A. Andreini, B. Facchini
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Abstract

Effusion cooling represents the state-of-the-art for liner cooling technology in modern combustion chambers, combining a more uniform film protection of the wall and a significant heat sink effect by forced convection through a huge number of small holes. From a numerical point of view, a high computational cost is required in a conjugate CFD analysis of an entire combustor for a proper discretization of effusion holes in order to obtain accurate results in terms of liner temperature and effectiveness distributions. Consequently, simplified CFD approaches to model the various phenomena associated are required, especially during the design process. For this purpose, 2D boundary sources models are attractive, replacing the effusion hole with an inlet (hot side) and an outlet (cold side) patches to consider the related coolant injection. However, proper velocity profiles at the inlet patch together with the correct mass flow rate is mandatory to accurately predict the interaction and the mixing between coolant air and hot gases as well as temperature and effectiveness distributions on the liners. In this sense, reduced-order models techniques from the Machine Learning framework can be employed to derive a Surrogate Model (SM) for the prediction of these velocity profiles with a reduced computational cost, starting from a limited number of CFD simulations of a single effusion hole at different operating conditions. In this work, an application of these approaches will be presented to model the effusion system of a non-reactive single-sector linear combustor simulator equipped with a swirler and a multi-perforated plate, combining ANSYS Fluent with a MATLAB code. The employed Surrogate Model has been constructed on a training set of CFD simulations of the single effusion hole with operating conditions sampled in the model parameter space and subsequently assessed on a different validation set.
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燃气轮机燃烧室积液建模的降阶模型
射流冷却代表了现代燃烧室中最先进的衬里冷却技术,结合了壁面更均匀的膜保护和通过大量小孔强制对流的显著散热效应。从数值角度看,为了得到准确的炉膛温度分布和效率分布,对整个燃烧室进行共轭CFD分析时,需要对射流孔进行适当的离散化,计算成本较高。因此,需要简化的CFD方法来模拟各种相关现象,特别是在设计过程中。为此,二维边界源模型很有吸引力,用入口(热侧)和出口(冷侧)补丁代替渗出孔,以考虑相关的冷却剂注入。然而,为了准确预测冷却剂空气和热气体之间的相互作用和混合,以及衬垫上的温度和效率分布,必须在入口补丁处设置适当的速度分布和正确的质量流量。从这个意义上说,机器学习框架中的降阶模型技术可以从有限数量的不同操作条件下的单个溢流孔CFD模拟开始,以更低的计算成本推导出用于预测这些速度剖面的代理模型(SM)。在这项工作中,将结合ANSYS Fluent和MATLAB代码,将这些方法应用于非反应性单扇区线性燃烧室模拟器的射流系统建模,该模拟器配备了一个旋流器和一个多穿孔板。所采用的代理模型是在单个渗流孔的CFD模拟训练集上构建的,并在模型参数空间中采样操作条件,随后在不同的验证集上进行评估。
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