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Combustion modelling for a diesel engine with multi-stage injection using a stochastic combustion model

机译:基于随机燃烧模型的多级喷射柴油机燃烧模型

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摘要

This study presents the development of a phenomenological combustion model to simulate the combustion processes in diesel engines with multi-stage fuel injection. A newly developed zero-dimensional spray propagation model and a model of spray-to-spray interaction were combined with a stochastic combustion model, which had been developed for the calculation of diesel combustion in the case of single-stage injection. In this model, the combustion chamber is divided into an ambient air zone and several spray zones, where the spray formed by each injection is treated as a spray zone. The turbulent mixing, the fuel evaporation, the heat loss and the chemical reactions are calculated in each spray zone separately. A zero-dimensional spray propagation model including the spray evolution after the end of injection and a model of interaction between the sprays from sequential injections are developed to describe the spray behaviour for the case of multi-stage injection. Then the developed combustion model is validated against the experimental data from a single-cylinder direct-injection diesel engine with two-stage pilot–main injection, in which the pilot injection conditions are varied with a fixed main-injection timing. Based on the analysis of the heat release rate, the entrainment rate and the microscopic information inside the spray, such as the probability density function of the equivalence ratio, the effects of the wall impingement and the interaction between adjacent sprays on the fuel–air mixing rate and the entrainment rate are formularized and employed to reproduce the measured histories of the heat release rate. The reduction in the fuel–air mixing rate is considered when the spray flows into the squish region after wall impingement, which is effective in obtaining the measured decrease in the heat release of the pilot spray with advancing pilot injection timing. The effects of the wall impingement of the main spray and the interaction between adjacent sprays are modelled to reproduce the heat release rate during the initial part and later part of the mixing-controlled combustion. After these improvements, the heat release rates of the test engine when varying the pilot injection conditions were successfully predicted.
机译:这项研究提出了一种现象学燃烧模型的开发,以模拟多级燃油喷射柴油发动机的燃烧过程。将新开发的零维喷雾传播模型和喷雾与喷雾之间的相互作用模型与随机燃烧模型相结合,该模型已被开发用于计算单级喷射情况下的柴油燃烧。在此模型中,燃烧室分为一个环境空气区和几个喷雾区,其中每次喷射形成的喷雾被视为一个喷雾区。分别在每个喷雾区域中计算湍流混合,燃料蒸发,热损失和化学反应。建立了一个零维喷雾传播模型,该模型包括注射结束后的喷雾演变以及连续注射的喷雾之间的相互作用模型,以描述多级注射情况下的喷雾行为。然后,根据带有两级先导主喷射的单缸直喷柴油机的实验数据验证开发的燃烧模型,其中先导喷射条件随固定的主喷射正时变化。基于对放热率,夹带率和喷雾内部微观信息的分析,例如当量比的概率密度函数,壁撞击的影响以及相邻喷雾之间的相互作用对燃料-空气混合的影响公式化吸气速率和夹带速率,并用于重现测得的放热速率历史。当喷雾撞击壁后进入雾状区域时,可考虑降低燃料-空气混合速率,这对于随着先导喷射正时的提前而有效地获得了先导喷雾的热释放量的有效降低。对主喷雾壁撞击的影响以及相邻喷雾之间的相互作用进行建模,以再现混合控制燃烧初期和后期的放热率。经过这些改进,成功预测了在改变引燃喷射条件时测试发动机的放热率。

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