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LOW-ORDER MODELING OF CAN-ANNULAR COMBUSTORS

机译:罐环燃烧器的低阶建模

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摘要

Heavy-duty land-based gas turbines are often designed with can-annular combustors, which consist of a set of identical cans, acoustically connected on the upstream side via the compressor plenum, and, downstream, with a small annular gap located at the transition with the first turbine stage. The modeling of this cross-talk area is crucial to predict the thermo-acoustic modes of the system. Thanks to the discrete rotational symmetry, Bloch wave theory can be exploited to reduce the system to a longitudinal combustor with a complex-valued equivalent outlet reflection coefficient, which models the annular gap. The present study reviews existing low-order models based purely on geometrical parameters and compares them to 2D Helmholtz simulations. We demonstrate that the modeling of the gap as a thin annulus is not suited for can-annular combustors and that the Rayleigh conductivity model only gives qualitative agreement. We then propose an extension for the equivalent reflection coefficient that accounts not only for geometrical but also flow parameters, by means of a characteristic length. The proposed model is in excellent agreement with 2D simulations and is able to correctly capture the eigenfrequencies of the system. We then perform a Design of Experiments study that allows us to explore various configurations and build correlations for the characteristic length. Finally, we discuss the validity limits of the proposed low-order modeling approach.
机译:重型陆基燃气轮机通常设计有罐环形燃烧器,该燃烧器由一组相同的罐组成,通过压缩机通风仪和下游在上游侧,并且下游,位于过渡时的小环形间隙上。用第一涡轮机舞台。该串扰区域的建模对于预测系统的热声模式至关重要。由于离散的旋转对称,可以利用Bloch波理论将系统减少到具有复值的等效出口反射系数的纵向燃烧器,其模拟环形间隙。本研究审查了纯粹基于几何参数的现有低阶模型,并将其与2D Helmholtz模拟进行比较。我们证明了间隙的建模作为薄环不适合罐环燃烧器,并且瑞利电导率模型仅提供定性协议。然后,我们通过特征长度提出不仅用于几何而且流量参数的等效反射系数的扩展。拟议的模型与2D模拟非常一致,能够正确捕获系统的特征频率。然后,我们执行实验研究的设计,该研究允许我们探索各种配置并构建特征长度的相关性。最后,我们讨论了所提出的低阶建模方法的有效性限制。

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