A Comprehensive Ignition System Model for Spark Ignition Engines

Haiwen Ge, Peng Zhao
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引用次数: 8

Abstract

In the present paper, a comprehensive ignition system model (VTF ignition model) accounting for the practical module and working mechanism of a spark plug was developed, aiming to provide enhanced capability for the 3D combustion simulation of spark ignition engines. In this model, an electrical circuitry model is used to represent the ignition coil, spark plug, and air column. The air column is represented by a set of Lagrangian particles that move with the local flow field. Flame propagation is directly calculated using SAGE model with a reduced isooctane reaction mechanism. The new ignition system model is further implemented into CONVERGE through user defined functions and is verified by comparing with the conventional DPIK model. It is found that the VTF ignition model predicts slower combustion than the DPIK model, mainly due to more realistic energy deposit method and energy discharging rate. Furthermore, the VTF model also has the capability of predicting the arc motion and restrike phenomena associated with spark ignition processes. It is expected that with more validation with experiments, the new VTF model has the great potential to better serve the needs of engine combustion simulation.
火花点火发动机点火系统综合模型
本文建立了一个考虑火花塞实际模块和工作机理的综合点火系统模型(VTF点火模型),旨在为火花塞发动机的三维燃烧仿真提供增强的能力。在该模型中,采用电路模型来表示点火线圈、火花塞和气柱。气柱由一组随局部流场运动的拉格朗日粒子表示。采用SAGE模型直接计算了异辛烷还原反应机理下的火焰传播。通过用户自定义函数将新点火系统模型进一步实现到CONVERGE中,并与传统的DPIK模型进行对比验证。研究发现,与DPIK模型相比,VTF点火模型预测的燃烧速度较慢,这主要是由于能量沉积方法和能量放电速率更为现实。此外,该模型还具有预测火花点火过程中电弧运动和重击现象的能力。期望通过更多的实验验证,新的VTF模型能够更好地服务于发动机燃烧仿真的需要。
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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