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Applying ECFM Combustion Model to Spark Ignition Engine, Comparison with Experimental Data

机译:将ECFM燃烧模型应用于火花点火发动机,与实验数据相比

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In order to increase the efficiency of the engine and reduce emissions, right sizing plays a predominant role. Validation of turbulent combustion in engine environment using numerical tools is even more challenging. For better understanding of the thermodynamic and chemical behaviour of gas, a proper CFD models set-up should be used to represent turbulence, heat model, ignition, flame propagation and knock. This paper presents an application of ECFM (Extended Coherent Flame Model) as a combustion model coupled with ISSIM (Imposed Stretch Spark Ignition Model) to create the flame kernel due to spark. Two mechanisms named stretching and wrinkling affect the development of the flame front. Stretching is a result from turbulent velocity, and wrinkling is a result from turbulent length scale. The effect of the ECFM model constant addressing stretching and wrinkling, and the process to fix those parameters are briefed in this paper. The simulation results have showed a very good agreement with the combustion test results of RENAULT Engine in terms of pressure, heat release rate and combustion duration.
机译:为了提高发动机的效率,减少排放,右侧尺寸起着主要的作用。使用数值工具验证发动机环境中的湍流燃烧更具挑战性。为了更好地了解气体的热力学和化学行为,应使用适当的CFD模型设置来表示湍流,热模型,点火,火焰传播和敲击。本文介绍了ECFM(扩展相干火焰模型)作为燃烧模型,耦合与ISSIM(施加的拉伸火花点火模型),以产生由于火花的火焰核。两个名为拉伸和皱纹的机制会影响火焰前面的发展。拉伸是湍流速度的结果,湍流长度尺度的皱纹是结果。本文简要介绍了ECFM模型常量寻址拉伸和皱纹的效果,以及修复这些参数的过程。仿真结果表明,在压力,热释放率和燃烧持续时间方面,与雷诺发动机的燃烧试验结果表明非常良好。

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