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Stabilization effects of perforated plates on the combustion instability in a lean premixed combustor

机译:稀薄预混燃烧器中多孔板对燃烧不稳定性的稳定作用

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In the present study, an FDF (Flame Describing Function)-based approach is applied to numerically investigate the attenuation characteristics of a perforated plate. In order to effectively suppress the combustion instability, this study adopts an alternative approach to optimally design a passive damper using a perforated plate. We confirm that the proposed attenuation conditions of a perforated plate ensure quite stable conditions over the entire range of velocity perturbation ratios. Moreover, the present method using Luong model can be applied to all Strouhal number regimes in contrast to a conventional method using the Howe model. Numerical results were also compared with experimental data in terms of the resonant frequency and limit-cycle velocity perturbation ratio. Although slight discrepancies exist, the present FDF-based approach yields an overall agreement with the experimental results. In addition, the numerical results show that perforated plates with smaller holes or thinner plate thicknesses are more effective at stabilizing the oscillation induced by combustion. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在本研究中,基于FDF(火焰描述函数)的方法被应用于数值研究多孔板的衰减特性。为了有效地抑制燃烧不稳定性,本研究采用了一种替代方法,以优化设计使用多孔板的被动阻尼器。我们确认所提出的多孔板衰减条件可确保在整个速度扰动比范围内保持相当稳定的状态。此外,与使用Howe模型的常规方法相比,使用Luong模型的本方法可以应用于所有Strouhal数域。还在共振频率和极限循环速度摄动比方面将数值结果与实验数据进行了比较。尽管存在细微的差异,但当前基于FDF的方法与实验结果完全一致。另外,数值结果表明,具有较小孔或较薄板厚度的多孔板在稳定燃烧引起的振荡方面更有效。 (C)2016 Elsevier Ltd.保留所有权利。

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