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Numerical investigation of forced ignition in laminar counterflow non-premixed methane-air flames

机译:层流逆流非预混甲烷 - 空气火焰强迫点火的数值研究

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摘要

Simulations of forced ignition of non-premixed laminar counterflow flames are used to study the effect of strain rate on ignition success. A one dimensional calculation is performed, using detailed methane chemical kinetics and treating the spark as an instantaneous heat release in an inert mixing layer. Ignition success depends on the mixture composition at the spark location, resulting in lean and rich ignitability limits for a given spark that can be different from the fuel's static flammability limits. The difference is attributed to the finite spark width and the diffusion of heat from the spark to the flammable mixture. Ignition is prohibited by excessive strain rates, in some cases at levels well below the extinction value. The structure of the evolving flame is examined in terms of temperature, heat release rate and species mass fraction distributions. In the case of successful ignition, the high temperature reached due to the spark energy deposition causes local auto-ignition and subsequently, intense burning rapidly consumes the premixed reactants in the mixing layer and a non-premixed flame survives. In the case of unsuccessful ignition, despite the auto-ignition achieved in the sparked region, the strain rate is sufficiently high or the composition is sufficiently far away from the nominally flammable mixture for the heat and radicals to diffuse without resulting in a flame at long times from the spark event.
机译:非预混层流逆流火焰强制点火的模拟用于研究应变率对点火成功的影响。使用详细的甲烷化学动力学进行一维计算,并将火花作为惰性混合层中的瞬时热量释放。点火成功取决于火花处的混合气成分,从而导致给定火花的稀薄和浓淡可燃性限值可能与燃料的静态可燃性限值不同。差异归因于有限的火花宽度和热量从火花到易燃混合物的扩散。过度的应变速率会禁止点火,在某些情况下,应变速率远低于消光值。从温度,放热率和物质质量分数分布方面检查了火焰的结构。在成功点火的情况下,由于火花能量沉积而达到的高温引起局部自燃,随后剧烈燃烧迅速消耗了混合层中的预混合反应物,并且未预混合的火焰得以幸存。在点火不成功的情况下,尽管在点火区域实现了自燃,但应变率仍然足够高,或者成分与名义上易燃的混合物相距足够远,因此热量和自由基扩散而不会长时间产生火焰火花事件发生的次数。

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  • 年度 2007
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