论文标题

氢/空气混合物中冷点自动签名的机理

Mechanism of Cold-spot Autoignition in a Hydrogen/Air Mixture

论文作者

Manias, Dimitris M., Sow, Aliou, Tingas, Efstathios-Al., Perez, Francisco E. Hernandez, Im, Hong G., Goussis, Dimitris A.

论文摘要

在设计高效率火花点击(SI)发动机以高压比运行时,必须解决的主要问题之一是从预点击方面进行爆炸。为了控制这种现象,有必要了解启动爆炸的机制。通过考虑具有详细化学性质的一维恒定体积化学计量氢/空气反应器,分析了从预位锋开始的爆炸的发展。采用了末端壁附近的空间线性初始温度剖面,以说明散装混合物的热分层。在左壁附近启动火焰,并分析了其对冷端壁的繁殖影响。注意到在火焰前的冷点内表现出的自动登记,远离末端墙,随后是爆炸。使用CSP工具,研究了产生压力波影响冷点内自动签名的机制。发现由反射压力波引起的压力振荡和预点击前部产生的压力波倾向于在腔室中同步,从而以周期性的方式增加了系统的反应性。与火焰前所有其他点相比,冷点的振荡温度平均温度更高。结果,那里最重要的反应的速率常数较大,导致更具反应性的状态加速了冷点的动力学及其自动签名。

When designing high-efficiency spark-ignition (SI) engines to operate at high compression ratios, one of the main issues that have to be addressed is detonation development from a pre-ignition front. In order to control this phenomenon, it is necessary to understand the mechanism by which the detonation is initiated. The development of a detonation from a pre-ignition front was analyzed by considering a one-dimensional constant-volume stoichiometric hydrogen/air reactor with detailed chemistry. A spatially linear initial temperature profile near the end-wall was employed, in order to account for the thermal stratification of the bulk mixture. A flame was initiated near the left wall and the effects of its propagation towards the cold end-wall were analyzed. Attention was given on the autoignition that is manifested within the cold-spot ahead of the flame and far from the end-wall, which is followed by detonation. Using CSP tools, the mechanism by which the generated pressure waves influence the autoignition within the cold-spot was investigated. It is found that the pressure oscillations induced by the reflected pressure waves and the pressure waves generated by the pre-ignition front tend to synchronize in the chamber, increasing the reactivity of the system in a periodic manner. The average of the oscillating temperature is greater in the cold-spot, compared to all other points ahead of the flame. As a result, the rate constants of the most important reactions are larger there, leading to a more reactive state that accelerates the dynamics of the cold-spot and to its autoignition.

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