不同预混合湍流燃烧状态下火焰前沿内火焰位移速度的演变

IF 2 3区 工程技术 Q3 MECHANICS Flow, Turbulence and Combustion Pub Date : 2023-11-01 DOI:10.1007/s10494-023-00494-3
Nilanjan Chakraborty, Cesar Dopazo, Harry Dunn, Umair Ahmed
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引用次数: 0

摘要

从第一原理推导出了预混合火焰中火焰位移速度演变的传输方程,并根据具有不同卡尔洛维茨数的统计平面湍流预混合火焰的直接数值模拟数据库分析了该方程项的平均行为。研究发现,燃烧制度(或卡尔洛维茨数)会影响位移速度传输方程项的平均贡献的统计行为,这些项与位移速度的法向应变率和曲率相关。由分子扩散和火焰曲率引起的贡献在所有燃烧状态下都起主导作用,而由火焰法向应变和反应标量梯度引起的项只有在代表薄反应区状态的高卡尔洛维茨数火焰中才起主导作用。位移速度传输方程项的平均行为表明,流体动力法向应变、反应标量梯度和火焰曲率的影响在位移速度的演变中起着关键作用。本文详细解释了位移速度传输方程中各个项的平均特征,并根据一维稳定层流预混合火焰中相应项的行为解释了它们的定性行为。这意味着,即使在卡洛维兹数为中等值的薄反应区制度中,未来也有可能利用小火焰假设对位移速度传输方程的非封闭项进行建模。
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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Evolution of Flame Displacement Speed Within Flame Front in Different Regimes of Premixed Turbulent Combustion

A transport equation for the flame displacement speed evolution in premixed flames is derived from first principles, and the mean behaviours of the terms of this equation are analysed based on a Direct Numerical Simulation database of statistically planar turbulent premixed flames with a range of different Karlovitz numbers. It is found that the regime of combustion (or Karlovitz number) affects the statistical behaviour of the mean contributions of the terms of the displacement speed transport equation which are associated with the normal strain rate and curvature dependence of displacement speed. The contributions arising from molecular diffusion and flame curvature play leading order roles in all combustion regimes, whereas the terms arising from the flame normal straining and reactive scalar gradient become leading order contributors only for the flames with high Karlovitz number values representing the thin reaction zones regime. The mean behaviours of the terms of the displacement speed transport equation indicate that the effects arising from fluid-dynamic normal straining, reactive scalar gradient and flame curvature play key roles in the evolution of displacement speed. The mean characteristics of the various terms of the displacement speed transport equation are explained in detail and their qualitative behaviours can be expounded based on the behaviours of the corresponding terms in the case of 1D steady laminar premixed flames. This implies that the flamelet assumption has the potential to be utilised for the purpose of any future modelling of the unclosed terms of the displacement speed transport equation even in the thin reaction zones regime for moderate values of Karlovitz number.

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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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