通过对鞍点轨迹的统计分析,确定控制热声不稳定性的最佳位置。

IF 2.7 2区 数学 Q1 MATHEMATICS, APPLIED
Chaos Pub Date : 2024-08-01 DOI:10.1063/5.0175991
C P Premchand, Abin Krishnan, Manikandan Raghunathan, P R Midhun, K V Reeja, R I Sujith, Vineeth Nair
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引用次数: 0

摘要

我们提出了一个拉格朗日相干结构(LCS)框架,以实现对热声不稳定状态下产生的音调进行被动开环控制。实验在热声不稳定状态下的实验室规模崖体稳定湍流燃烧器中进行。我们利用流场的动态模式分解来确定声频占主导地位的动态区域。我们发现,来自燃烧器后向台阶的分离剪切层在外侧再循环区包裹着一个圆柱形漩涡,最终在热声不稳定状态下冲击燃烧器顶壁。我们通过几个声学周期来跟踪后向台阶产生的剪切层中的鞍点。然后,我们制定了一种被动控制策略,通过注入稳定的二次空气流,确定鞍点在统计意义上大部分时间都在该位置的最佳位置。在实施控制行动后,我们还使用 LCS 对结果流场进行了分析,以了解流动动态的关键差异。我们发现,在实施控制后,从倾卸平面出现的剪切层会向几乎平行于燃烧器轴线的方向偏转。这种偏转反过来又阻止了剪切层包围涡流并撞击燃烧器壁,从而大幅降低了产生的声音振幅。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Identifying optimal location for control of thermoacoustic instability through statistical analysis of saddle point trajectories.

We propose a framework of Lagrangian Coherent Structures (LCSs) to enable passive open-loop control of tonal sound generated during thermoacoustic instability. Experiments were performed in a laboratory-scale bluff-body stabilized turbulent combustor in the state of thermoacoustic instability. We use dynamic mode decomposition on the flow-field to identify dynamical regions where the acoustic frequency is dominant. We find that the separating shear layer from the backward-facing step of the combustor envelops a cylindrical vortex in the outer recirculation zone, which eventually impinges on the top wall of the combustor during thermoacoustic instability. We track the saddle points in this shear layer emerging from the backward-facing step over several acoustic cycles. A passive control strategy is then developed by injecting a steady stream of secondary air targeting the identified optimal location where the saddle points spend a majority of their time in a statistical sense. After implementing the control action, the resultant flow-field is also analyzed using LCS to understand the key differences in flow dynamics. We find that the shear layer emerging from the dump plane is deflected in a direction almost parallel to the axis of the combustor after the control action. This deflection, in turn, prevents the shear layer from enveloping the vortex and impinging on the combustor walls, resulting in a drastic reduction in the amplitude of the sound produced.

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来源期刊
Chaos
Chaos 物理-物理:数学物理
CiteScore
5.20
自引率
13.80%
发文量
448
审稿时长
2.3 months
期刊介绍: Chaos: An Interdisciplinary Journal of Nonlinear Science is a peer-reviewed journal devoted to increasing the understanding of nonlinear phenomena and describing the manifestations in a manner comprehensible to researchers from a broad spectrum of disciplines.
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