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LES Study of Transverse Acoustic Instabilities in a Swirled Kerosene/Air Combustion Chamber

机译:旋流煤油/空气燃烧室中横向声不稳定性的LES研究

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摘要

LES is used to study self-excited transverse modes in an atmospheric, square combustor (p = 1 bar). Simulations over a range of different mass flow rates show that transverse modes are present for all cases and exhibit varying RMS pressure amplitudes up to 0.4 bar. Analysis of LES results shows that transverse modes are due to a lock-in mechanism between an hydrodynamic unstable mode typical of swirling flows (the PVC mode or Processing Vortex Core) and the cavity modes. A control method using damping compliant walls (named DCWs) is applied to control the acoustic mode in the LES and to characterize the PVC in the absence of acoustic forcing. This method shows that the highest pressure oscillations appear when the PVC frequency is close to the frequency of the first transverse acoustic mode. A 3D Helmholtz solver is then used to predict the stability limits obtained by 3D LES. To capture transverse modes, a new flame transfer function (FTF) formulation is derived where local heat release perturbations are controlled by the orthoradial acoustic velocity fluctuations. The FTF is measured in the LES and when it is included in the Helmholtz solver, it allows to recover the stability zones observed in the LES.
机译:LES用于研究方形大气燃烧器(p = 1 bar)中的自激横模。在不同质量流量范围内的仿真表明,在所有情况下都存在横向模式,并且横向模式均表现出变化的RMS压力幅度,最高可达0.4 bar。对LES结果的分析表明,横向模式是由于旋流典型的流体动力学不稳定模式(PVC模式或Processing Vortex Core)与空腔模式之间的锁定机制引起的。应用了使用阻尼顺应壁(称为DCW)的控制方法来控制LES中的声模,并在没有声强的情况下表征PVC。此方法表明,当PVC频率接近第一横向声模的频率时,出现最高的压力振荡。然后使用3D亥姆霍兹求解器来预测3D LES获得的稳定性极限。为了捕获横向模式,导出了新的火焰传递函数(FTF)公式,其中局部热释放扰动由正交辐射速度波动控制。 FTF在LES中测量,当包含在Helmholtz求解器中时,它可以恢复LES中观察到的稳定区。

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