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Local stability analysis and eigenvalue sensitivity of reacting bluff-body wakes

机译:反应性钝体尾流的局部稳定性分析和特征值敏感性

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This paper presents an experimental and theoretical investigation of high-Reynolds-number low-density reacting wakes mar a hydrodynamic Hopf bifurcation. This configuration is applicable to the wake flows that are commonly used to stabilize flames in high-velocity flows. First, an experimental study is conducted to measure the limit-cycle oscillation of this reacting bluff-body wake. The experiment is repeated while independently varying the bluff-body lip velocity and the density ratio across the flame. In all cases, the Wake exhibits a sinuous oscillation. Linear stability analysis is performed on the measured time-averaged velocity and density fields. In the first stage of this analysis, a local spatiotemporal stability analysis is performed on the measured time-averaged velocity and density fields. The stability analysis results are compared to the experimental measurement and demonstrate that the local stability analysis correctly captures the influence of the lip velocity and density ratio parameters on the sinuous mode. In the second stage of the analysis, the linear direct and adjoint global modes are estimated by combining the local results. The sensitivity of the eigenvalue to changes in intrinsic feedback mechanisms is found by combining the direct and adjoint global modes. This is referred to as the eigenvalue sensitivity throughout the paper for reasons of brevity. The predicted global mode frequency is consistently within 10% of the measured value, and the linear global mode shape closely resembles the measured nonlinear oscillations. The adjoint global mode reveals that the oscillation is strongly sensitive to open-loop forcing in the shear layers. The eigenvalue sensitivity identifies a wavemaker in the recirculation zone of the wake. A parametric study shows that these regions change little when the density ratio and lip velocity change. In the third stage of the analysis, the stability analysis is repeated for the varicose hydrodynamic mode. Although not physically observed in this unforced flow, the varicose mode can lock into longitudinal acoustic waves and cause thermoacoustic oscillations to occur. The paper shows that the local stability analysis successfully predicts the global hydrodynamic stability characteristics of this flow and shows that experimental data can be post-processed with this method in order to identify the wavemaker regions and the regions that are most sensitive to external forcing, for example from acoustic waves.
机译:本文提出了在流体动力学霍夫夫分岔中高雷诺数低密度反应流的实验和理论研究。此配置适用于通常用于稳定高速流中火焰的尾流。首先,进行了一项实验研究,以测量这种反应性的钝体尾流的极限循环振荡。重复该实验,同时独立改变钝体的唇速度和整个火焰的密度比。在所有情况下,苏醒都呈现出正弦振荡。对测得的时间平均速度场和密度场进行线性稳定性分析。在此分析的第一阶段,对测得的时间平均速度场和密度场进行局部时空稳定性分析。将稳定性分析结果与实验测量结果进行比较,证明局部稳定性分析正确地捕获了唇形速度和密度比参数对正弦波模式的影响。在分析的第二阶段,通过组合局部结果来估计线性直接模式和伴随全局模式。特征值对内在反馈机制变化的敏感性是通过结合直接和伴随全局模式来发现的。为了简洁起见,这在本文中称为特征值敏感性。预测的全局模式频率始终在测量值的10%以内,并且线性全局模式形状与所测量的非线性振荡非常相似。伴随的整体模式表明,振荡对剪切层中的开环强迫非常敏感。特征值灵敏度识别出尾流再循环区域中的造波器。参数研究表明,当密度比和唇速度变化时,这些区域变化很小。在分析的第三阶段,对曲张水动力模式重复进行稳定性分析。尽管在这种非强迫流动中没有物理观察到,但曲张模式可以锁定在纵向声波中,并引起热声振荡。本文表明,局部稳定性分析成功地预测了该流动的整体水动力稳定性特征,并表明可以使用此方法对实验数据进行后处理,以识别波轮区域和对外部强迫最敏感的区域。声波的例子。

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