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Heat Release Rate Modeling Improvement in an Eulerian 1D Diesel Combustion Model

机译:欧拉1D柴油燃烧模型中的热释放速率建模改进

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Diesel engines are being more commonly used for light automotive applications, due to their higher efficiency. However, pollutant emissions can be higher than their gasoline counterparts, being difficult to reduce and control because reducing one pollutant increases another. One way to reduce emissions is by using multiple injection strategies. However, understanding multiple injections is no easy task, so far done by trial and error and experience. Therefore, a numerical 1D model is to be adapted to simulate multiple injection situations in a diesel engine. In a previous paper by the authors, an existing model was adapted with a thermal dilatation model to consider both radial and axial dilatations in the diesel spray. The base model used is that of Ma et al (based on the Eulerian model of Musculus and Kattke for inert diesel jets). One limitation found on this model was the difference in the heat release and pressure rise curves with respect to the experimental data, resulting in an erroneous estimation of the combustion chamber pressure, which will be crucial to the modeling of multiple injections. To improve this calculation, a mapping of the mixture fraction and reactants fraction is proposed, following the work of Tap and Veynante for diffusion flames, which in turn is based on the Burke-Schumann approach of infinitely fast chemistry for the combustion modeling. A gradual transition from a mixture regime to a steady combustion is modeled by the average reaction rate calculated using Chemkin. A radial distribution of fractions is made by using the mixture fraction distribution instead of the fuel fraction distribution (such as described in Desantes et al.), and then applying the previous mapping. The resulting plots of heat release and pressure rise have improved precision, leading to a better estimation of the combustion chamber pressure, critical to a good modeling of the multiple injection phenomena.
机译:由于其效率更高,柴油发动机更常用于轻型汽车应用。然而,污染物排放可以高于它们的汽油对应物,因此难以减轻和控制,因为减少一个污染物增加了另一个污染物。减少排放的一种方法是使用多种注射策略。但是,到目前为止,理解多次注射并不容易完成试用和错误和经验。因此,旨在调整数值1D模型以模拟柴油发动机中的多个喷射情况。在先前的作者中,现有模型适用于热扩张模型,以考虑柴油喷雾中的径向和轴向膨胀。所使用的基础模型是MA等人(基于惰性柴油喷气机的Musculus eulerian模型)。在该模型上发现的一个限制是对实验数据的热释放和压力升高曲线的差异,导致燃烧室压力的错误估计,这对多次喷射的建模至关重要。为了改善该计算,提出了混合物级分和反应物馏分的映射,这是在龙头和veynante进行扩散火焰的作用之后,这反过来基于燃烧建模无限快速化学的伯克舒曼接近。从混合物制度到稳定燃烧的逐渐过渡是通过使用Chemin计算的平均反应速率的模拟。通过使用混合物分量分布而不是燃料分数分布来制备馏分的径向分布(例如在脱甜丝等中描述),然后施加先前的映射。所得到的热释放和压力升高的曲线具有改善的精度,从而更好地估计燃烧室压力,对多次注射现象的良好建模至关重要。

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