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Experimental Studies of the Role of Chemical Kinetics in Turbulent Flames

机译:化学动力学在湍流火焰中作用的实验研究

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摘要

Flames of di-t-butyl-peroxide (DTBP) decomposition in a 0.376DTBP + 1.0N2 mixture are studied in laminar and turbulent media. The observed values of unstretched laminar burning velocity are in reasonable agreement with the value obtained from the Zel'dovich—Semenov—Frank-Kamenetsky theory. Turbulent explosions in this particular mixture are characterized by a number of features that are believed to be common for all developing turbulent flames and have relevance to spark-ignition engine combustion of lean mixtures. Flame propagation is unsteady and is characterized by a mass burning rate that increases in time. The rate of the flame acceleration varies from one explosion to another. If the burning rate is related to the average flame radius, however, it exhibits much smaller variations. This phenomenon bears a striking resemblance to cycle-to-cycle variations in a spark-ignition engine. Comparisons of the present results with mixtures of significantly different composition, chemical kinetics, and exothermicity, but with similar laminar flame speed and Lewis number show that the data obtained in closed-volume explosions are in good agreement if the unsteady character of the flame is taken into account. The differences in details of the kinetic mechanisms and thermochemistry appear to be responsible for the flame behaviour only near the limit of extinction by turbulence.
机译:在层流和湍流介质中研究了0.376DTBP + 1.0N2混合物中的过氧化二叔丁基过氧化物(DTBP)分解的火焰。未拉伸层流燃烧速度的观测值与从Zel'dovich-Semenov-Frank-Kamenetsky理论获得的值合理地吻合。在这种特定混合物中的湍流爆炸具有许多特征,这些特征被认为对于所有正在发展的湍流火焰都是共有的,并且与稀薄混合物的火花点火式发动机燃烧有关。火焰传播不稳定,其特征在于质量燃烧速率随时间增加。火焰加速的速率从一次爆炸到另一次爆炸而变化。但是,如果燃烧速率与平均火焰半径有关,则燃烧速率的变化要小得多。这种现象与火花点火发动机中的逐周期变化极为相似。与具有明显不同的成分,化学动力学和放热性但具有相似层流火焰速度和刘易斯数的混合物的本结果比较表明,如果采取火焰的不稳定特性,则在闭式爆炸中获得的数据非常吻合考虑在内。动力学机制和热化学细节上的差异似乎仅在湍流消光极限附近才是火焰行为的原因。

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