首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >TIME DOMAIN BLOCH BOUNDARY CONDITIONS FOR EFFICIENT SIMULATION OF THERMOACOUSTIC LIMIT-CYCLES IN (CAN-)ANNULAR COMBUSTORS
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TIME DOMAIN BLOCH BOUNDARY CONDITIONS FOR EFFICIENT SIMULATION OF THERMOACOUSTIC LIMIT-CYCLES IN (CAN-)ANNULAR COMBUSTORS

机译:(CAN)环形燃烧器热声极限循环的有效时域块边界条件

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Thermo-acoustic eigenmodes of annular or can-annular combustion chambers, which typically feature a discrete rotational symmetry, may be computed in an efficient manner by utilizing the Bloch-wave theory. Unfortunately, the application of the Bloch-wave theory to combustion dynamics has hitherto been limited to the frequency domain. In this study we present a time domain formulation of Bloch boundary conditions (BBC), which allows to employ them in time domain simulations, e.g. CFD simulations. The BBCs are expressed as acoustic scattering matrices and translated to complex-valued state-space systems. In a hybrid approach an unsteady, compressible CFD simulation of the burner-flame zone is coupled via characteristic-based state-space boundary-conditions to a reduced order model of the combustor acoustics that includes BBCs. The acoustic model with BBC accounts for cross-can acoustic coupling and the discrete rotational symmetry of the configuration, while the CFD simulation accounts for the nonlinear flow-flame-acoustic interactions. This approach makes it possible to model limit cycle oscillations of (can-)annular combustors at drastically reduced computational cost compared to CFD simulations of the full configuration, and without the limitations of weakly nonlinear approaches that utilize a flame describing function. In the current study the suggested approach is applied to a generic multi-can combustor. Results agree well with a fully compressible CFD simulation of the complete configuration.
机译:可以利用布洛赫波理论以有效的方式来计算通常具有离散旋转对称性的环形或环形燃烧室的热声本征模式。不幸的是,迄今为止,布洛赫波理论在燃烧动力学中的应用仅限于频域。在这项研究中,我们提出了Bloch边界条件(BBC)的时域公式,可将其用于时域仿真,例如CFD模拟。 BBC表示为声散射矩阵,并转换为复数值状态空间系统。在混合方法中,燃烧器-火焰区域的不稳定,可压缩的CFD模拟通过基于特征的状态空间边界条件与包含BBC的燃烧器声学降阶模型耦合。具有BBC的声学模型考虑了跨罐声学耦合和配置的离散旋转对称性,而CFD模拟则考虑了非线性的流-焰-声相互作用。与完全配置的CFD仿真相比,这种方法可以以大大降低的计算成本对(can)环形燃烧室的极限循环振荡进行建模,而不受使用火焰描述功能​​的弱非线性方法的限制。在当前的研究中,建议的方法应用于通用的多罐燃烧室。结果与完整配置的完全可压缩CFD模拟非常吻合。

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