Effects of Hydrogen Enrichment on Thermoacoustic and Helical Instabilities in Swirl Stabilised Partially Premixed Flames

IF 2 3区 工程技术 Q3 MECHANICS Flow, Turbulence and Combustion Pub Date : 2023-10-27 DOI:10.1007/s10494-023-00504-4
Ankit D. Kumar, James C. Massey, Isaac Boxx, Nedunchezhian Swaminathan
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Abstract

Abstract The effects of hydrogen enrichment on flame and flow dynamics of a swirl-stabilised partially premixed methane-air flame are studied using large eddy simulation. The sub-grid reaction rate is modelled using unstrained premixed flamelets and a presumed joint probability density function approach. Two cases undergoing thermoacoustic oscillations at ambient conditions are studied. The addition of hydrogen modifies both thermoacoustic and fluid dynamical characteristics. The amplitude of the fundamental thermoacoustic mode increases with the addition of 20% hydrogen by volume. A second pressure mode associated with the chamber mode is also excited with the hydrogen addition. Intermittent single, double and triple helical instabilities are observed in the pure methane case, but are suppressed substantially with hydrogen addition. The results are analysed in detail to shed light on these observations. The feedback loop responsible for the thermoacoustic instability is driven by mixture fraction perturbations resulting from the unequal impedances of the fuel and air channels. It is shown that hydrogen addition increases the flame’s sensitivity to these perturbations, resulting in an increase in amplitude. This higher amplitude thermoacoustic oscillation, along with a higher local heat release rate in the presence of hydrogen, is shown to considerably modify the flow structures, leading to a suppression of the helical instabilities.

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氢富集对旋流稳定部分预混火焰热声和螺旋不稳定性的影响
摘要采用大涡模拟的方法,研究了氢气富集对旋流稳定部分预混甲烷-空气火焰及火焰流动动力学的影响。采用非应变预混合小火焰和假定联合概率密度函数方法对亚网格反应速率进行了建模。研究了两种在环境条件下发生热声振荡的情况。氢的加入改变了热声和流体动力学特性。基本热声模的振幅随体积氢含量的增加而增加。与所述腔室模式相关联的第二压力模式也用所述加氢激发。在纯甲烷的情况下,观察到间歇性的单螺旋、双螺旋和三螺旋不稳定性,但在加氢的情况下,这种不稳定性得到了抑制。对结果进行了详细的分析,以阐明这些观察结果。引起热声不稳定性的反馈回路是由燃料通道和空气通道阻抗不等引起的混合分数扰动驱动的。结果表明,氢的加入增加了火焰对这些扰动的敏感性,从而导致振幅的增加。这种高振幅的热声振荡,以及在氢存在下较高的局部热释放率,被证明可以显著地改变流动结构,导致螺旋不稳定性的抑制。
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来源期刊
Flow, Turbulence and Combustion
Flow, Turbulence and Combustion 工程技术-力学
CiteScore
5.70
自引率
8.30%
发文量
72
审稿时长
2 months
期刊介绍: Flow, Turbulence and Combustion provides a global forum for the publication of original and innovative research results that contribute to the solution of fundamental and applied problems encountered in single-phase, multi-phase and reacting flows, in both idealized and real systems. The scope of coverage encompasses topics in fluid dynamics, scalar transport, multi-physics interactions and flow control. From time to time the journal publishes Special or Theme Issues featuring invited articles. Contributions may report research that falls within the broad spectrum of analytical, computational and experimental methods. This includes research conducted in academia, industry and a variety of environmental and geophysical sectors. Turbulence, transition and associated phenomena are expected to play a significant role in the majority of studies reported, although non-turbulent flows, typical of those in micro-devices, would be regarded as falling within the scope covered. The emphasis is on originality, timeliness, quality and thematic fit, as exemplified by the title of the journal and the qualifications described above. Relevance to real-world problems and industrial applications are regarded as strengths.
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