Experimental and Numerical Investigation of Early Phase of Laser Ignition Under Stoichiometric and Lean Conditions

D. Coombs, N. Peters, B. Akih-Kumgeh
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Abstract

Forced ignition, the initiation of combustion processes by rapid and localized introduction of energy, is central to the successful operation of many combustion systems. It is therefore of interest to investigate this process, starting from the introduction of energy to the emergence of self-sustained flame or the quenching of an otherwise initialized flame kernel. Since the process is highly non-equilibrium and involves various complex kinetic phenomena, it is important to understand the key aspects that control failed or successful ignition. Detailed studies of the early phases of the ignition process can lead to knowledge of more general characteristics of the problem so that reduced models of the ignition process can be developed. These reduced versions can be used in less costly computational studies to assess various ignition events. This paper reports an experimental and numerical investigations of the early phase of laser ignition. The gas mixtures, air, methane/N2 and methane/air are considered to bring out the effect of heat release on the early flow field. The mixtures are studied at three different energy levels and the Jones blast wave theory is used to deduce the energy responsible for the development of the attendant shock waves. This energy is also used to specify initial conditions for the simulations of air and methane/air processes. Additionally, interferometry is used to resolve the density field within the plasma kernel. For the methane/air simulation two chemical models are used, a global reaction model supplemented by an ignition model and a two-step mechanism. The sensitivity of the simulations to the initial geometry of the laser spark is also investigated. The blast wave and interferometry results show that in the reacting methane/air mixture the resulting shock wave is strengthened by early heat release. It is also shown that the shock wave trajectory is not strongly affected by the initial spark geometry, but it has an impact on the velocity field and on the distribution of thermodynamic properties.
化学计量和精益条件下早期激光点火的实验和数值研究
强制点火,通过快速和局部引入能量来启动燃烧过程,是许多燃烧系统成功运行的核心。因此,从能量的引入到自持火焰的出现或初始化火焰核的熄灭,研究这一过程是有意义的。由于这个过程是高度不平衡的,并且涉及各种复杂的动力学现象,因此了解控制点火失败或成功的关键方面是很重要的。对点火过程早期阶段的详细研究可以使我们了解问题的更一般的特征,从而可以开发出点火过程的简化模型。这些简化版本可以用于成本较低的计算研究,以评估各种点火事件。本文报道了激光点火初期的实验和数值研究。考虑混合气体、空气、甲烷/N2和甲烷/空气对早期流场的放热影响。在三个不同的能量水平上研究了混合物,并使用琼斯爆炸波理论来推断伴随冲击波发展的能量。这种能量也被用来指定空气和甲烷/空气过程模拟的初始条件。此外,干涉测量法用于等离子体核内的密度场解析。对于甲烷/空气的模拟,采用了两种化学模型,一个是全局反应模型,一个是点火模型,一个是两步机理模型。研究了模拟对激光火花初始几何形状的敏感性。爆炸波和干涉测量结果表明,在反应的甲烷/空气混合物中,由于热的早期释放,产生的冲击波得到加强。研究还表明,初始火花几何形状对激波轨迹的影响不大,但对速度场和热力学性质的分布有影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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