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Propagation speeds for interacting triple flames

机译:三重火焰相互作用的传播速度

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Triple (or tribrachial) flames propagate through mixtures faster than the premixed laminar flame speed due to streamline divergence ahead of the flame base that decelerates the flow into the leading edge of the flame. When multiple triple flames are in close proximity, the bulk propagation speed of the structure can be even faster due to additional streamline divergence. Turbulent flames in partially-premixed conditions can encounter these situations, where multiple stoichiometric crossing are in close proximity, leading to multiple interacting triple flames being formed. Propagation speeds of the flame structure with respect the bulk flow for individual triple flames have been well characterized in previous studies, and the local flame speed of interacting triple flames have been reported; however, characterization of the propagation speed for the overall flame structure of interacting triple flame speeds has not been reported. The present work utilizes a laminar five slot burner, which allows both the concentration gradients and stoichiometric separation distance of two interacting triple flames to be varied. The bulk propagation speed of the multiple edge flames has been characterized as a function of the distance between the flame bases (or stoichiometric locations) and the local flame curvatures in order to better understand the conditions which lead to larger streamline divergence and faster propagation speeds. Interaction between multiple edge flames has been found to play an essential role in this propagation speed. Interacting edge flame speeds were modeled by modifying the relationship for single triple flame propagation speed with an added term for the interaction between the two flames to account for the increased effective divergence. (C) 2017 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:三(或三臂)火焰在混合物中的传播速度比预混合层流火焰速度快,这是因为火焰基部之前的流线发散会降低流向火焰前缘的速度。当多个三重火焰非常接近时,由于额外的流线发散,结构的整体传播速度甚至可能更快。在部分预混合条件下的湍流火焰会遇到这些情况,其中多个化学计量交叉非常接近,导致形成多个相互作用的三重火焰。在以前的研究中,已经很好地描述了火焰结构相对于单个三重火焰整体流量的传播速度,并且已经报道了相互作用的三重火焰的局部火焰速度。但是,尚未报道相互作用三重火焰速度的整个火焰结构的传播速度的特征。本工作利用层状五槽燃烧器,它可以改变两个相互作用的三重火焰的浓度梯度和化学计量的分离距离。为了更好地理解导致更大的流线发散和更快的传播速度的条件,已将多个边缘火焰的整体传播速度表征为火焰基部(或化学计量位置)之间的距离和局部火焰曲率的函数。已经发现,多个边缘火焰之间的相互作用在该传播速度中起着至关重要的作用。通过修改单个三重火焰传播速度的关系以及两个火焰之间相互作用的附加项来模拟相互作用的边缘火焰速度,以说明有效发散的增加。 (C)2017燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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