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Effects of Turbulent Reynolds Number on the Displacement Speed Statistics in the Thin Reaction Zones Regime of Turbulent Premised Combustion

机译:湍流雷诺数对湍流前提燃烧薄反应区状态下位移速度统计的影响

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The effects of turbulent Reynolds number on the statistical behaviour of the displacement speed have been studied using three-dimensional Direct Numerical Simulation of statistically planar turbulent premixed flames. The probability of finding negative values of the displacement speed is found to increase with increasing turbulent Reynolds number when the Damkohler number is held constant. It has been shown that the statistical behaviour of the Surface Density Function, and its strain rate and curvature dependence, plays a key role in determining the response of the different components of displacement speed. Increasing the turbulent Reynolds number is shown to reduce the strength of the correlations between tangential strain rate and dilatation rate with curvature, although the qualitative nature of the correlations remains unaffected. The dependence of displacement speed on strain rate and curvature is found to weaken with increasing turbulent Reynolds number when either Damkohler or Karlovitz number is held constant, but the qualitative nature of the correlation remains unaltered. The implications of turbulent Reynolds number effects in the context of Flame Surface Density (FSD) modelling have also been addressed, with emphasis on the influence of displacement speed on the curvature and propagation terms in the FSD balance equation.
机译:使用统计平面湍流预混火焰的三维直接数值模拟研究了湍流雷诺数对位移速度的统计行为的影响。当Damkohler数保持恒定时,发现发现位移速度为负值的可能性会随着湍流雷诺数的增加而增加。研究表明,表面密度函数的统计行为及其应变率和曲率依赖性在确定位移速度的不同分量的响应中起着关键作用。尽管湍流雷诺数增加,但切质应变率和扩张率之间的相关性随着曲率而减小,尽管相关性的质性不受影响。当Damkohler数或Karlovitz数保持恒定时,随着湍流雷诺数的增加,位移速度对应变率和曲率的依赖性减弱,但是相关性的质性保持不变。还解决了在火焰表面密度(FSD)建模中湍流雷诺数效应的影响,重点是位移速度对FSD平衡方程中曲率和传播项的影响。

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  • 来源
    《Journal of combustion》 |2011年第1期|p.473679.1-473679.19|共19页
  • 作者单位

    Engineering Department, University of Liverpool, Brownlow Hill, Liverpool L69 3GH, UK;

    Technische Universitaet Darmstadt, Institutfuer Energie -und Kraftwerkstechnik, Petersenstrasse 30, 64287 Darmstadt, Germany;

    Engineering Department, Cambridge University, Trumpington Street, Cambridge CB2 1PZ, UK;

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