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Impact of the bluff-body material on the flame leading edge structure and flame-flow interaction of premixed CH4/air flames

机译:钝体材料对预混CH4 /空气火焰的火焰前缘结构和火焰流相互作用的影响

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In this paper we investigate the interaction between the flame structure, the flow field and the coupled heat transfer with the flame holder of a laminar lean premixed CH4/air flame stabilized on a heat conducting bluff body in a channel. The study is conducted with a 2-D direct numerical simulation with detailed chemistry and species transport and with no artificial flame anchoring boundary conditions. Capturing the multiple time scales, length scales and flame-wall thermal interaction was done using a low Mach number operator-split projection algorithm, coupled with a block-structured adaptive mesh refinement and an immersed boundary method for the solid body. The flame structure displays profiles of the main species and atomic ratios similar to previously published experimental measurements on an annular bluff body configuration for both laminar and turbulent flow, demonstrating generality of the resolved flame leading edge structure for flames that stabilize on a sudden expansion. The flame structure near the bluff body and further downstream shows dependence on the thermal properties of the bluff body. We analyze the influence of flow strain and heat losses on the flame, and show that the flame stretch increases sharply at the flame leading edge, and this high stretch rate, together with heat losses, dictate the flame anchoring location. By analyzing the impact of the flame on the flow field we reveal that the strong dependence of vorticity dilatation on the flame location leads to high impact of the flame anchoring location on the flow and flame stretch downstream. This study sheds light on the impact of heat losses to the flame holder on the flame-flow feedback mechanism in lean premixed flames. (C) 2016 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:在本文中,我们研究了稳定在通道内导热钝体上的层流贫化预混合CH4 /空气火焰的火焰支架与火焰结构,流场和耦合传热之间的相互作用。该研究是通过二维直接数值模拟进行的,具有详细的化学和物质传输方式,并且没有人工火焰锚定边界条件。使用低马赫数算子拆分投影算法,结合块结构自适应网格细化和沉浸边界方法,捕获了多个时间尺度,长度尺度和火焰壁热相互作用。火焰结构显示了主要物质和原子比的分布,类似于先前发布的针对层流和湍流的环形钝体构造的实验测量结果,证明了对于突然膨胀稳定的火焰,解析的火焰前缘结构具有一般性。阻流体的附近和更下游的火焰结构显示出对阻流体的热性能的依赖性。我们分析了流动应变和热量损失对火焰的影响,结果表明火焰延伸在火焰前缘处急剧增加,而这种高延伸率以及热量损失决定了火焰的固定位置。通过分析火焰对流场的影响,我们发现涡旋膨胀对火焰位置的强烈依赖性导致火焰锚定位置对流动和下游火焰扩展的强烈影响。这项研究揭示了在稀薄预混火焰中,热量损失对火焰架的影响对火焰流反馈机制的影响。 (C)2016年燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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