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首页> 外文期刊>Journal of Fluid Mechanics >Reconciling turbulent burning velocity with flame surface area in small-scale turbulence
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Reconciling turbulent burning velocity with flame surface area in small-scale turbulence

机译:在小型湍流中调和火焰表面区域的湍流燃烧速度

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摘要

A discrepancy between the enhancement in overall burning rate and the enhancement in flame surface area measured for high-intensity turbulence is addressed. In order to reconcile the two quantities, an additional contribution from the effective turbulent diffusivity is considered. This contribution is expected to arise in sufficiently intense turbulence from eddies smaller than the flamelet thickness. In the present work, the enhancement in diffusivity arising from these eddies is estimated based on a model energy spectrum; individual contributions from all turbulence length scales smaller the flamelet thickness are integrated over the corresponding portion of the spectrum. It is shown that diffusivity enhancement, estimated in this manner, is able to account for the measured discrepancy between the overall burning rate enhancement and flame surface area enhancement. The factor quantifying this discrepancy is formalized as a closed-form function of the Karlovitz number.
机译:解决了用于高强度湍流测量的总燃烧速率的增强与用于高强度湍流的火焰表面积的增强之间的差异。 为了调和两种数量,考虑了来自有效湍流扩散率的额外贡献。 预计该贡献将出现在小于燧发塞厚度的漩涡的足够强烈的湍流中。 在本作工作中,基于模型能谱估计来自这些漩涡的扩散性的增强; 所有湍流长度尺度的个体贡献较小,燧发塞厚度在光谱的相应部分上集成在一起。 结果表明,以这种方式估计的扩散性增强能够考虑整体燃烧速率增强和火焰表面区域增强之间的测量差异。 量化该差异的因子被形式化为Karlovitz号的闭合功能。

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