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预混火焰后台阶燃烧器燃烧不稳定性期间的拉格朗日相干结构

Lagrangian coherent structures during combustion instability in a premixed-flame backward-step combustor.

作者信息

Sampath Ramgopal, Mathur Manikandan, Chakravarthy Satyanarayanan R

机构信息

Department of Aerospace Engineering, Indian Institute of Technology Madras, Chennai 600036, India.

National Centre for Combustion Research & Development, Indian Institute of Technology Madras, Chennai 600036, India.

出版信息

Phys Rev E. 2016 Dec;94(6-1):062209. doi: 10.1103/PhysRevE.94.062209. Epub 2016 Dec 14.

Abstract

This paper quantitatively examines the occurrence of large-scale coherent structures in the flow field during combustion instability in comparison with the flow-combustion-acoustic system when it is stable. For this purpose, the features in the recirculation zone of the confined flow past a backward-facing step are studied in terms of Lagrangian coherent structures. The experiments are conducted at a Reynolds number of 18600 and an equivalence ratio of 0.9 of the premixed fuel-air mixture for two combustor lengths, the long duct corresponding to instability and the short one to the stable case. Simultaneous measurements of the velocity field using time-resolved particle image velocimetry and the CH^{*} chemiluminescence of the flame along with pressure time traces are obtained. The extracted ridges of the finite-time Lyapunov exponent (FTLE) fields delineate dynamically distinct regions of the flow field. The presence of large-scale vortical structures and their modulation over different time instants are well captured by the FTLE ridges for the long combustor where high-amplitude acoustic oscillations are self-excited. In contrast, small-scale vortices signifying Kelvin-Helmholtz instability are observed in the short duct case. Saddle-type flow features are found to separate the distinct flow structures for both combustor lengths. The FTLE ridges are found to align with the flame boundaries in the upstream regions, whereas farther downstream, the alignment is weaker due to dilatation of the flow by the flame's heat release. Specifically, the FTLE ridges encompass the flame curl-up for both the combustor lengths, and thus act as the surrogate flame boundaries. The flame is found to propagate upstream from an earlier vortex roll-up to a newer one along the backward-time FTLE ridge connecting the two structures.

摘要

本文定量研究了燃烧不稳定期间流场中大规模相干结构的出现情况,并与流动 - 燃烧 - 声学系统稳定时的情况进行了比较。为此,从拉格朗日相干结构的角度研究了受限流动经过后向台阶时再循环区域的特征。实验在雷诺数为18600、预混燃料 - 空气混合物当量比为0.9的条件下进行,针对两种燃烧器长度,长管道对应不稳定情况,短管道对应稳定情况。同时使用时间分辨粒子图像测速技术测量速度场、测量火焰的CH*化学发光以及压力随时间的变化曲线。有限时间李雅普诺夫指数(FTLE)场提取的脊线描绘了流场中动态不同的区域。对于长燃烧器,在高振幅声振荡自激的情况下,FTLE脊线很好地捕捉到了大规模涡旋结构及其在不同时刻的调制。相比之下,在短管道情况下观察到了表示开尔文 - 亥姆霍兹不稳定性的小尺度涡旋。发现鞍型流动特征将两种燃烧器长度下的不同流动结构分隔开。FTLE脊线在上游区域与火焰边界对齐,而在下游更远的地方,由于火焰热释放导致流动膨胀,对齐较弱。具体而言,FTLE脊线在两种燃烧器长度下都包围了火焰卷曲,因此可作为替代火焰边界。发现火焰沿着连接两个结构的向后时间FTLE脊线从较早的涡旋卷起向上游传播到较新的涡旋卷起。

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