Numerical and Experimental Investigation on an Effusion-Cooled Lean Burn Aeronautical Combustor: Aerothermal Field and Metal Temperature

D. Bertini, L. Mazzei, S. Puggelli, A. Andreini, B. Facchini, L. Bellocci, A. Santoriello
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引用次数: 7

Abstract

Lean burn combustion is increasing its popularity in the aeronautical framework due to its potential in reducing drastically pollutant emissions (NOx and soot in particular). Its implementation, however, involves significant issues related to the increased amount of air dedicated to the combustion process, demanding the redesign of injection and cooling systems. A reduced coolant mass flow rate in conjunction with higher compressor discharge temperature negatively affect the cooling potential thus requiring the exploitation of efficient schemes such as effusion cooling. This work describes the experimental and numerical final validation of an aeronautical effusion-cooled lean-burn combustor. Full annular tests were carried out to measure temperature profiles and metal temperature distributions at different operating conditions of the ICAO cycle. Such an outcome was obtained also with an in-house developed CHT methodology (THERM3D). RANS simulations with the Flamelet Generated Manifold combustion model were performed to estimate aerothermal field and heat loads, while the coupling with a thermal conduction solver returns the most updated wall temperature. The heat sink within the perforation is treated with a 0D correlative model that calculates the heat pickup and the temperature rise of coolant. The results highlight an overall good capability of the proposed approach to estimate the metal temperature distribution at different operating conditions. It is also shown how more advanced scale-resolving simulations could significantly improve the prediction of turbulent mixing and heat loads.
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射流冷却稀薄燃烧航空燃烧室的数值与实验研究:热场与金属温度
稀薄燃烧在航空框架中越来越受欢迎,因为它有可能大幅减少污染物排放(特别是氮氧化物和煤烟)。然而,它的实施涉及到与燃烧过程中专用空气量增加有关的重大问题,要求重新设计喷射和冷却系统。冷却剂质量流量的降低与压缩机排气温度的升高会对冷却潜力产生负面影响,因此需要采用诸如溢流冷却等有效方案。本文描述了一种航空液体冷却稀薄燃烧燃烧室的实验和数值最终验证。进行了全环空试验,以测量ICAO循环不同运行条件下的温度分布和金属温度分布。这样的结果也是通过内部开发的CHT方法(THERM3D)获得的。使用Flamelet生成的流形燃烧模型进行了RANS模拟,以估计空气热场和热负荷,同时与热传导求解器耦合返回最新的壁面温度。对射孔内的散热器进行了0D相关模型处理,该模型计算了吸热量和冷却剂的温升。结果表明,所提出的方法在不同操作条件下估计金属温度分布的总体能力较好。它也显示了如何更先进的尺度分辨模拟可以显著改善湍流混合和热负荷的预测。
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