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Prediction of Heat Transfer to the Walls in Direct Injection (DI) Diesel Engines

机译:直喷式柴油发动机中的热传递对墙壁的热传递预测

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This paper presents an analysis of the heat transfer from gases to the cylinder walls of Direct Injection (DI) Diesel engines by means of Computational Fluid Dynamics (CFD). The aim of this study is to evaluate the parameters that are significant in the heat transfer and to improve the predictions obtained with a zero-dimensional thermodynamic model currently used in the automotive industry for combustion diagnosis. First, several tests with retarded start of injection have been carried out on two geometries, in order to study the heat transfer to the walls during the compression stroke before ignition. The comparison of these CFD results with those obtained from the zero-dimensional model showed that the latter over-predicted or under-predicted the heat transfer depending on the swirl level in the engine. The knowledge gained from the CFD results was used to obtain better correlations to represent the influence of the swirl and thus improve the zero-dimensional heat transfer model in the pre-combustion phase. The capability for the CFD calculations to predict heat transfer during the whole closed engine cycle taking into account the combustion has then been explored. To avoid large calculations including the reactive combustion process, the effects of the combustion in terms of heat release and changes in species concentrations is simulated by means of source terms in the corresponding equations. With this methodology it is possible to accurately predict the pressure and temperature of the gases enclosed in the cylinder and to obtain a good estimation of the heat transfer to the walls.
机译:本文通过计算流体动力学(CFD)提出了对直接喷射(DI)柴油发动机的气体的热传递的分析。本研究的目的是评估传热中显着的参数,并改善当前在汽车行业中使用的零维热力学模型获得的预测,用于燃烧诊断。首先,已经在两个几何形状上进行了几个具有延迟注射开始的测试,以便在点火之前研究在压缩冲程期间对壁的热传递到墙壁。这些CFD结果与从零维模型获得的那些的比较表明,后者过度预测或未预测,这取决于发动机中的涡流水平。通过CFD结果获得的知识用于获得更好的相关性以表示涡流的影响,从而改善预燃烧阶段中的零维传热模型。探讨了考虑到燃烧的整个闭合发动机周期内的CFD计算的能力,然后已经探讨了燃烧。为了避免包括反应燃烧过程的大型计算,通过在相应方程中的源术语模拟燃烧在热释放方面的影响和物种浓度的变化。利用这种方法,可以精确地预测封闭在气缸中的气体的压力和温度,并获得良好地估计到壁的热传递。

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