Numerical Study of Combustor-Turbine Interaction by Using Hybrid RANS-LES Approach

S. G. Tomasello, A. Andreini, R. Meloni, S. Cubeda, L. Andrei, V. Michelassi
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Abstract

The complex flow field of gas turbine lean combustors is meant to reduce NOx emissions and maintain a stable flame by controlling the local temperature and promoting high turbulent mixing. Still, this may produce large flow and temperature unsteady distortions capable of disrupting the aerodynamics and heat transfer of the first high-pressure-turbine cooled nozzle. Therefore, the interaction between the combustion chamber and the turbine nozzle is analyzed first with the help of scale-resolving simulations that notably also include a realistic turbine nozzle cooling system. To determine the nature and severity of the interaction, and the risks associated to performing decoupled simulation, the results of the coupled computer simulation are analyzed and compared with those of decoupled simulations. In this case, the combustor is computed by replacing the turbine nozzle with a discharge convergent with the same throat area, and the conditions at the interface plane are used as inlet boundary conditions for a conventional RANS of the nozzle. The analyses of the coupled and decoupled simulation reveal that the combustion chamber is weakly affected by the presence of the nozzle, whereas the two thermal fields of the nozzle surface differ considerably, as well as the disruption of the film cooling by the incoming flow distortions.
基于混合ranss - les方法的燃烧室-涡轮相互作用数值研究
燃气轮机精益燃烧室的复杂流场是为了通过控制局部温度和促进高湍流混合来减少NOx排放并保持稳定的火焰。尽管如此,这可能会产生巨大的流动和温度非定常畸变,从而破坏第一个高压涡轮冷却喷嘴的空气动力学和传热。因此,燃烧室和涡轮喷管之间的相互作用首先通过尺度解析模拟进行分析,其中还包括一个真实的涡轮喷管冷却系统。为了确定相互作用的性质和严重程度,以及与执行解耦仿真相关的风险,对耦合计算机仿真的结果进行了分析,并与解耦仿真的结果进行了比较。在这种情况下,燃烧室的计算是通过将涡轮喷管替换为具有相同喉道面积的收敛流量来实现的,并且将界面平面上的条件作为喷管常规RANS的入口边界条件。耦合和解耦仿真分析表明,喷嘴的存在对燃烧室的影响很小,而喷嘴表面的两个热场差异很大,以及来流畸变对气膜冷却的破坏。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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