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Effect of pressure wave disturbance on auto-ignition mode transition and knocking intensity under enclosed conditions

机译:封闭条件下压力波扰动对自燃模式转变和爆震强度的影响

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Pressure wave propagation behavior is an essential feature for the combustion under enclosed conditions, e.g. internal combustion engines. Previous work by Pan et al. (2016) and Yu et al. (2015) showed that pressure wave disturbance not only affects hot-spot formation and knocking origin, but also induces detonation wave through a coupling mechanism between pressure wave and flame front. On this basis, this study further investigates the role of pressure wave disturbance in auto-ignition mode and knocking intensity by means of detailed numerical simulations with stoichiometric H-2/air mixture. Firstly, the pressure waves with different levels in strength have been obtained by adjusting ignition temperature of hot ignition kernel. It shows that as ignition temperature is raised at each initial temperature, pressure wave strength is decreased monotonously, with declining compression ratio and temperature rise caused by pressure wave disturbance. Secondly, three auto-ignition modes have been observed with the variations of pressure wave strength, i.e. detonation, mixed mode and supersonic deflagration. As the weakness of pressure wave strength, there is an auto-ignition mode transition from detonation to supersonic deflagration, accompanied by rapid decreases in pressure peak, obvious pre-flame partial reaction and significant increases in auto-ignition reaction front speed. These observations are still maintained at elevated initial pressure conditions. Finally, such auto-ignition modes and knocking intensity for the detailed computations are summarized in the non-dimensional Bradley's diagram. The results show that both auto-ignition mode and initial thermodynamic state can affect knocking intensity, and the modifications in knocking intensity by pressure wave disturbance are mainly through auto-ignition mode transition. This is qualitatively consistent with the distribution of combustion regimes in Bradley's diagram, even though some deviations do exist because the diagram is constructed on basis of initially non-reactive flows. (C) 2017 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:压力波传播行为是密闭条件下燃烧的基本特征,例如:内燃机。 Pan等人的先前工作。 (2016)和Yu等。 (2015年)表明,压力波扰动不仅影响热点形成和爆震起源,而且还通过压力波与火焰前缘之间的耦合机制诱发了爆炸波。在此基础上,本研究通过化学计量H-2 /空气混合物的详细数值模拟,进一步研究了压力波扰动在自燃模式和爆震强度中的作用。首先,通过调节热点火核的点火温度,获得了强度不同的压力波。结果表明,随着点火温度在每个初始温度的升高,压力波强度单调降低,压缩比下降,压力波扰动引起温度升高。其次,观察到三种自燃模式,它们具有压力波强度的变化,即起爆,混合模式和超音速爆燃。由于压力波强度的弱化,自燃模式由爆轰过渡到超音速爆燃,伴随着压力峰值的快速下降,明显的火焰前部分反应和自燃反应前沿速度的显着提高。这些观察结果仍保持在较高的初始压力条件下。最后,在无量纲Bradley图中总结了这种自动点火模式和爆震强度,以进行详细的计算。结果表明,自燃模式和初始热力学状态均会影响爆震强度,而压力波扰动对爆震强度的影响主要是通过自燃模式转变引起的。这与Bradley图中燃烧状态的分布在质量上是一致的,尽管确实存在一些偏差,因为该图是基于最初的非反应流构建的。 (C)2017燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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