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首页> 外文期刊>Journal of Fluid Mechanics >IGNITION IN THE SUPERSONIC HYDROGEN/AIR MIXING LAYER WITH REDUCED REACTION MECHANISMS
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IGNITION IN THE SUPERSONIC HYDROGEN/AIR MIXING LAYER WITH REDUCED REACTION MECHANISMS

机译:反应机理减弱的超音速氢气/空气混合层中的着火

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Asymptotic analysis of ignition within the supersonic hydrogen/air mixing layer is performed using reduced mechanisms. Two distinct reduced mechanisms for the high-temperature and the low-temperature regimes are used depending on the characteristic temperature of the reaction zone relative to the crossover temperature at which the reaction rates of the H + O-2 branching and termination steps are equal. Each regime further requires two distinct analyses for the hot-stream and the viscous-heating cases, depending on the relative dominance of external and internal ignition energy sources. These four cases are analysed separately, and it is shown that the present analysis successfully describes the ignition process by exhibiting turning point or thermal runaway behaviour in the low-temperature regime, and radical branching followed by thermal runaway in the high-temperature regime. Results for the predicted ignition distances are then mapped out over the entire range of the parameters, showing consistent behaviour with the previous one-step model analysis. Furthermore, it is demonstrated that ignition in the low-temperature regime is controlled by a larger activation energy process, so that the ignition distance is more sensitive to its characteristic temperature than that in the high-temperature regime. The ignition distance is also found to vary non-monotonically with the system pressure in the manner of the well-known hydrogen/oxygen explosion limits, thereby further substantiating the importance of chemical chain mechanisms in this class of chemically reacting boundary layer flows. [References: 18]
机译:超音速氢/空气混合层内点火的渐近分析是使用简化的机制进行的。根据反应区的特征温度相对于H + O-2支化和终止步骤的反应速率相等时的交越温度,使用两种不同的高温和低温还原机理。每个方案还需要根据外部和内部点火能源的相对优势,对热流和粘性加热情况进行两个不同的分析。分别对这四种情况进行了分析,结果表明,本分析通过在低温状态下表现出转折点或热失控行为,在高温状态下表现出自由基支化和热失控,成功地描述了点火过程。然后将预测点火距离的结果映射到参数的整个范围内,显示与先前的一步模型分析一致的行为。此外,证明了在低温状态下的点火通过较大的活化能过程来控制,因此点火距离比其在高温下的特征温度更敏感。还发现点火距离以众所周知的氢/氧爆炸极限的方式随系统压力非单调变化,从而进一步证实了化学链机制在此类化学反应边界层流中的重要性。 [参考:18]

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