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首页> 外文期刊>International journal of hydrogen energy >Effect of differential diffusion on turbulent lean premixed hydrogen enriched flames through structure analysis
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Effect of differential diffusion on turbulent lean premixed hydrogen enriched flames through structure analysis

机译:通过结构分析差异扩散对湍流稀薄预混富氢火焰的影响

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摘要

This study presents the flame structure influenced by the differential diffusion effects and evaluates the structural modifications induced by the turbulence, thus to understand the coupling effects of the diffusively unstable flame fronts and the turbulence distortion. Lean premixed CH4/H-2/air flames were conducted using a piloted Bunsen burner. Three hydrogen fractions of 0, 30% and 60% were adopted and the laminar flame speed was kept constant. The turbulence was generated with a single-layer perforated plate, which was combined with different bulk velocities to obtain varied turbulence intensities. Quasilaminar flames without the plate were also performed. Explicit flame morphology was obtained using the OH-PLIF. The curvature, flame surface density and turbulent burning velocity were measured. Results show that the preferential transport of hydrogen produces negatively curved cusps flanked with positively curved bulges, which are featured by skewed curvature pdfs and consistent with the typical structure caused by the Darrieus-Landau instability. Prevalent bulge-cusp like wrinkles remain with relatively weak turbulence. However, stronger turbulence can break the bulges to be finer, and induce random positively curved cusps, therefore to destroy the bulge-cusp structures. Evident positive curvatures are generated in this process modifying the skewed curvature pdfs to be more symmetric, while the negative curvatures are not affected seriously. From low to high turbulence intensities, the hydrogen addition always strengthens the flame wrinkling. The augmentation of flame surface density and turbulent burning velocity with hydrogen is even more obvious at higher turbulence intensity. It is suggested that the differential diffusion can persist and even be strengthened with strong turbulence. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:这项研究提出了受微分扩散效应影响的火焰结构,并评估了湍流引起的结构变化,从而了解了扩散不稳定火焰前沿与湍流畸变的耦合效应。使用引燃的本生灯进行稀薄的预混合CH4 / H-2 /空气火焰。采用三个氢气分数分别为0、30%和60%,并且层流火焰速度保持恒定。用单层穿孔板产生湍流,将其与不同的整体速度组合以获得不同的湍流强度。没有板的准层火焰也被执行。使用OH-PLIF获得了明确的火焰形态。测量曲率,火焰表面密度和湍流燃烧速度。结果表明,氢的优先运输会产生负弯曲的尖端,其侧面为正弯曲的凸起,其特征在于弯曲的曲率pdf,并且与Darrieus-Landau不稳定性引起的典型结构一致。普遍的隆起样皱纹保持相对较弱的湍流。但是,更强的湍流可以使凸起破碎得更细,并诱发随机的正弯曲的尖端,从而破坏凸起的尖端结构。在此过程中会产生明显的正曲率,从而将偏斜曲率pdf修改为更加对称,而不会严重影响负曲率。从低到高的湍流强度,添加氢气总是会增强火焰起皱。在较高的湍流强度下,氢气对火焰表面密度和湍流燃烧速度的增强作用更加明显。这表明微分扩散可以持续存在,甚至在强烈的湍流中也可以得到加强。 (C)2020 Hydrogen Energy Publications LLC。由Elsevier Ltd.出版。保留所有权利。

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