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Flame macrostructures, combustion instability and extinction strain scaling in swirl-stabilized premixed CH4/H-2 combustion

机译:旋流稳定的预混合CH4 / H-2燃烧中的火焰宏观结构,燃烧不稳定性和熄灭应变缩放

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In this paper, we report results from an experimental investigation on transitions in the average flame shape (or microstructure) under acoustically coupled and uncoupled conditions in a 50 kW swirl stabilized combustor. The combustor burns CH4/H-2 mixtures at atmospheric pressure and temperature for a fixed Reynolds number of 20,000 and fixed swirl angle. For both cases, essentially four different flame shapes are observed, with the transition between flame shapes occurring at the same equivalence ratio (for the same fuel mixture) irrespective of whether the combustor is acoustically coupled or uncoupled. The transition equivalence ratio depends on the fuel mixture. For the baseline case of pure methane, the combustor is stable close to the blowoff limit and the average flame in this case is stabilized inside the inner recirculation zone. As the equivalence ratio is raised, the combustor transitions to periodic oscillations at a critical equivalence ratio of phi = 0.65. If hydrogen is added to the mixture, the same transition occurs at lower equivalence ratios. For all cases that we investigated, flame shapes captured using chemiluminescence imaging show that the transition to harmonic oscillations in the acoustically coupled cases is preceded by the appearance of the flame in the outer recirculation zone. We examine the mechanism associated with the transition of the flame between different shapes and, ultimately, the propagation of the flame into the outer recirculation zone as the equivalence ratio is raised. Using the extinction strain rates for each mixture at different equivalence ratios, we show that these transitions in the flame shape and in the instability (in the coupled case) for different fuel mixtures collapse as a function of a normalized strain rate : KextD/U-infinity. We show that the results as consistent with a mechanism in which the flame must overcome higher strains prevailing in the outer recirculation zone, in order to stabilize there. (C) 2015 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:在本文中,我们报告了在50 kW旋流稳定燃烧器中在声学耦合和非耦合条件下平均火焰形状(或微结构)转变的实验研究结果。燃烧室在大气压和温度下燃烧CH4 / H-2混合物,固定的雷诺数为20,000,固定的旋流角。对于这两种情况,观察到基本上四种不同的火焰形状,并且不管燃烧器是声学耦合还是非耦合,火焰形状之间的过渡都以相同的当量比发生(对于相同的燃料混合物)。过渡当量比取决于燃料混合物。对于纯甲烷的基准情况,燃烧器在接近吹扫极限附近是稳定的,在这种情况下,平均火焰在内部再循环区内是稳定的。随着当量比的提高,燃烧器以临界当量比phi = 0.65过渡到周期性振荡。如果将氢添加到混合物中,则在较低的当量比下会发生相同的转变。对于我们调查的所有情况,使用化学发光成像捕获的火焰形状表明,在声学耦合情况下,向谐波振荡的过渡先于外部再循环区域中出现了火焰。我们研究了与火焰在不同形状之间的过渡相关的机制,并最终研究了当当量比提高时火焰向外部再循环区域的传播。使用每种混合物在不同当量比下的消光应变率,我们表明,不同燃料混合物的火焰形状和不稳定性(在偶合情况下)的这些转变作为归一化应变率的函数而崩溃:KextD / U-无限。我们表明,该结果与火焰必须克服外部再循环区域中普遍存在的较高应变以使其稳定的机理一致。 (C)2015年燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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