Inhibiting the onset of thermoacoustic instability through targeted control of critical regions

IF 1.4 4区 工程技术 Q3 ENGINEERING, MECHANICAL International Journal of Spray and Combustion Dynamics Pub Date : 2023-02-03 DOI:10.1177/17568277221149507
M. Raghunathan, N. B. George, Vishnu R Unni, Jürgen Kurths, E. Surovyatkina, R. Sujith
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Abstract

This experimental study investigates the dynamical transition from stable operation to thermoacoustic instability in a turbulent bluff-body stabilised dump combustor. We conduct experiments to acquire acoustic pressure and local heat release rate fluctuations and use them to characterise this transition as we decrease the equivalence ratio towards a fuel-lean setting. More importantly, we observe a significant increase in local heat release rate fluctuations at critical locations well before thermoacoustic instability occurs. One of these critical locations is the stagnation zone in front of the bluff-body. By strategically positioning slots (perforations) on the bluff-body, we ensure the reduction of the growth of local heat release rate fluctuations at the stagnation zone near the bluff-body well before the onset of thermoacoustic instability. We show that this reduction in local heat release rate fluctuations inhibits the transition to thermoacoustic instability. We find that modified configurations of the bluff-body that do not quench the local heat release rate fluctuations at the stagnation zone result in the transition to thermoacoustic instability. We also reveal that an effective suppression strategy based on the growth of local heat release rate fluctuations requires an optimisation of the slots' area-ratio for a given bluff-body position. Further, the suppression strategy also depends on the spatial distribution of perforations on the bluff-body. Notably, an inappropriate distribution of the slots, which does not quench the local heat release rate fluctuations at the stagnation zone but creates new critical regions, may even result in a dramatic increase in the amplitudes of pressure oscillations.
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通过有针对性地控制关键区域来抑制热声不稳定性的发生
本实验研究了紊流崖体稳定自卸燃烧室从稳定运行到热声不稳定的动力学转变。我们进行实验以获得声压和局部热释放率波动,并使用它们来描述当我们降低等效比以达到燃料稀薄设置时的这种转变。更重要的是,我们观察到在热声不稳定发生之前,关键位置的局部热释放率波动显著增加。其中一个关键位置是崖体前方的滞止带。通过在崖体上有策略地定位槽(射孔),我们确保在热声不稳定发生之前,在崖体附近的停滞区减少局部热释放率波动的增长。我们表明,这种局部热释放率波动的减少抑制了向热声不稳定性的过渡。我们发现,如果改变了崖体的结构,不能抑制滞止区局部的热释放率波动,就会导致过渡到热声不稳定。我们还揭示了基于局部热释放率波动增长的有效抑制策略需要优化给定崖体位置的狭槽面积比。此外,抑制策略还取决于崖体上射孔的空间分布。值得注意的是,槽的不适当分布不仅不能淬灭停滞区局部放热率波动,反而会产生新的临界区域,甚至可能导致压力振荡幅度的急剧增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Journal of Spray and Combustion Dynamics
International Journal of Spray and Combustion Dynamics THERMODYNAMICS-ENGINEERING, MECHANICAL
CiteScore
2.20
自引率
12.50%
发文量
21
审稿时长
>12 weeks
期刊介绍: International Journal of Spray and Combustion Dynamics is a peer-reviewed open access journal on fundamental and applied research in combustion and spray dynamics. Fundamental topics include advances in understanding unsteady combustion, combustion instability and noise, flame-acoustic interaction and its active and passive control, duct acoustics...
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