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On the suppression of negative temperature coefficient (NTC) in autoignition of n-heptane droplets

机译:正庚烷液滴自燃中负温度系数(NTC)的抑制

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Autoignition of n-heptane droplets under microgravity is investigated numerically. The comprehensive model, considering the transience in both the gas and liquid phases and non-ideal thermophysical properties, includes the 116-step reaction mechanism of Griffiths. Two-stage ignition manifests for ambient temperature less than 900 K at elevated pressures of 0.5 and 1.0 MPa. The predicted first delays and total delays agree well with the experimental data in the literature. The second delay decreases greatly with increasing pressure because a stronger Stefan flow supplies more fuel vapor for reaction as the cool flame shifts closer to the droplet to enhance evaporation. The Stefan flow effect, in combination with the inhomogeneous temperature and fuel vapor distributions, explains why the NTC (negative temperature coefficient) present in homogeneous mixtures is not observed in droplet ignition experiments. Near the minimum ignition diameter, the ignition delay increases for smaller droplets at T_∞ = 700 K, P_∞ = 1.0 MPa. For a droplet smaller than the minimum ignition diameter, only first ignition with cool flame is reached. The absence of ZTC (zero temperature coefficient) in our simulations may be attributed to the weaker inverse temperature dependence of the reaction mechanism adopted.
机译:数值研究了微重力下正庚烷液滴的自燃。该综合模型考虑了气相和液相的瞬态变化以及非理想的热物理性质,其中包括格里菲斯的116步反应机理。在0.5和1.0 MPa的升高压力下,环境温度小于900 K时,发生两阶段点火。预测的第一延迟和总延迟与文献中的实验数据非常吻合。第二个延迟随着压力的增加而大大降低,因为当冷火焰移向液滴附近以增强蒸发时,较强的Stefan流量会提供更多的燃料蒸气进行反应。 Stefan流动效应与不均匀的温度和燃料蒸气分布相结合,解释了为什么在液滴点火实验中未观察到均匀混合物中存在的NTC(负温度系数)。在最小点火直径附近,较小的液滴在T_∞= 700 K,P_∞= 1.0 MPa时,点火延迟增加。对于小于最小点火直径的液滴,只能达到使用冷火焰的首次点火。在我们的模拟中不存在ZTC(零温度系数)可能是由于所采用的反应机理对温度的逆相关性较弱。

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