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CFD modeling of the in-cylinder flow in direct-injection Diesel engines

机译:直喷柴油机缸内流动的CFD建模

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Three-dimensional flow calculations of the intake and compression stroke of a four-valve direct-injection Diesel engine have been carried out with different combustion chambers. A limited number of validation calculations of the compression stroke were first performed in order to explore the limits of CFD representation of the in-cylinder flow. The calculated flow field in three different combustion chambers was compared with laser Doppler velocimetry measurements; the comparison shows that the three-dimensional model is reasonably accurate for crank-angles around top dead center (TDC). In general, it performs better for low swirl combustion chambers while turbulence velocities are under-predicted when squish effects are important. In the main study, the flow characteristics inside the engine cylinder equipped with different piston configurations were compared. For this, complete calculations of the intake and compression strokes were performed under realistic operating conditions and the ensemble-averaged velocity and turbulence flow fields obtained in each combustion chamber analyzed in detail. The results confirmed that the piston geometry had little influence on the in-cylinder flow during the intake stroke and the first part of the compression stroke. However, the bowl shape plays a significant role near TDC and in the early stage of the expansion stroke by controlling both the ensemble-averaged mean and the turbulence velocity fields.
机译:四气门直喷式柴油机的进气和压缩冲程的三维流动计算已在不同的燃烧室进行。为了探究缸内流的CFD表示法的局限性,首先对压缩冲程进行了有限的验证计算。将在三个不同燃烧室中计算出的流场与激光多普勒测速仪进行了比较;比较表明,三维模型对于上死点(TDC)周围的曲柄角相当准确。通常,当挤压效应很重要时,它在低涡流燃烧室中表现更好,而湍流速度却被低估了。在主要研究中,比较了配备有不同活塞配置的发动机气缸内的流动特性。为此,在实际工况下进行了进气和压缩冲程的完整计算,并详细分析了在每个燃烧室中获得的集合平均速度和湍流场。结果证实,在进气冲程和压缩冲程的第一部分期间,活塞的几何形状对缸内流量几乎没有影响。但是,碗形在TDC附近和膨胀冲程的早期起着重要的作用,通过控制集合平均平均值和湍流速度场来发挥作用。

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