描述类发动机湍流条件下火花点火过程的拉格朗日-欧拉混合模型的建立

R. Scarcelli, Anqi Zhang, T. Wallner, S. Som, Jing Huang, S. Wijeyakulasuriya, Yijin Mao, Xiucheng Zhu, Seong-Young Lee
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引用次数: 3

摘要

随着发动机技术向更具挑战性(高度稀释和增压)的方向发展,火花点火过程在决定火焰传播和燃烧过程的完整性方面起着关键作用。在计算方面,文献中有大量的火花点火模型,并在传统的化学计量SI操作下进行了验证。然而,这些模型需要在更多的物理基础上进行扩展和发展,因为在具有挑战性的操作中,它们并不是真正的预测。本文报道了在商业CFD代码CONVERGE中对非静态、类发动机条件下火花点火事件的专用模型的开发。开发的方法利用了先前的发现,这些发现扩大了欧拉型能量沉积模型的使用范围,提高了模型的准确性。在这项工作中,欧拉能量沉积在每个计算时间步与拉格朗日型火花通道的演化相耦合。典型的特征,如火花通道延伸,拉伸,附着到电极被适当地描述,以提供真实的能量沉积沿通道在整个点火过程中。数值结果与光学恒容室的纹影图像进行了验证,并显示了与最常用的能量沉积方法相比,在整个点火过程中火花通道模拟方面的改进。讨论了进一步的发展途径,以便在未来提供更多基于物理的点火模型特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of a Hybrid Lagrangian-Eulerian Model to Describe Spark-Ignition Processes at Engine-Like Turbulent Flow Conditions
With the engine technology moving towards more challenging (highly dilute and boosted) operation, spark-ignition processes play a key role in determining flame propagation and completeness of the combustion process. On the computational side, there is plenty of spark-ignition models available in literature and validated under conventional, stoichiometric SI operation. Nevertheless, these models need to be expanded and developed on more physical grounds since at challenging operation they are not truly predictive. This paper reports on the development of a dedicated model for the spark-ignition event at non-quiescent, engine-like conditions, performed in the commercial CFD code CONVERGE. The developed methodology leverages previous findings that have expanded the use and improved the accuracy of Eulerian-type energy deposition models. In this work, the Eulerian energy deposition is coupled at every computational time-step with a Lagrangian-type evolution of the spark channel. Typical features such as spark channel elongation, stretch, attachment to the electrodes are properly described to deliver realistic energy deposition along the channel during the entire ignition process. The numerical results are validated against schlieren images from an optical constant volume chamber and show the improvement in the simulation of the spark channel during the entire ignition event, with respect to the most commonly used energy deposition approach. Further development pathways are discussed to provide more physics-based features from the developed ignition model in the future.
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