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Efficient Computation of Thermoacoustic Modes in Industrial Annular Combustion Chambers Based on Bloch-Wave Theory

机译:基于布洛赫波理论的工业环形燃烧室热声模式的高效计算

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摘要

Most annular combustors feature a discrete rotational symmetry so that the full configuration can be obtained by copying one burner-flame segment a certain number of times around the circumference. A thermoacoustic model based on the Helmholtz equation then admits special solutions of the so-called Bloch type that can be obtained by considering one segment only. We show that a significant reduction in computational effort for the determination of thermoacoustic modes can be achieved by exploiting this concept. The framework is applicable even in complex cases including an inhomogeneous temperature field and a frequency-dependent, spatially distributed flame response. A parametric study on a three-dimensional combustion chamber model is conducted using both the full-scale chamber simulation and a one-segment model with the appropriate Bloch-type boundary conditions. The results for both computations are compared in terms of mode frequencies and growth rates as well as the corresponding mode shapes. The same is done for a more complex industrial configuration. These comparisons demonstrate the benefits of the Bloch-wave based analysis.
机译:大多数环形燃烧器具有离散的旋转对称性,因此可以通过在圆周上复制一个燃烧器-火焰段一定次数来获得完整的配置。然后,基于Helmholtz方程的热声模型接受了所谓的Bloch型特殊解决方案,该解决方案仅考虑一个部分即可获得。我们表明,利用这种概念可以显着减少确定热声模式的计算量。该框架甚至适用于复杂的情况,包括温度场不均匀和频率相关的,空间分布的火焰响应。使用全比例燃烧室模拟和具有适当Bloch型边界条件的单段模型,对三维燃烧室模型进行了参数研究。将两种计算的结果在模式频率和增长率以及相应的模式形状方面进行比较。对于更复杂的工业配置也是如此。这些比较证明了基于Blochwave的分析的好处。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2016年第8期|081502.1-081502.7|共7页
  • 作者单位

    Institut fuer Stroemungsmechanik und Technische Akustik, Technische Universitaet Berlin, Berlin 10623, Germany;

    Product Development, Turbomachinery and Combustion, Ansaldo Energia S.p.A., Genova 16152, Italy;

    Institut fuer Stroemungsmechanik und Technische Akustik, Technische Universitaet Berlin, Berlin 10623, Germany;

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