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Representation of Two-Stroke Engine Scavenging in 1D Models Using 3D Simulations

机译:使用3D模拟表示二次模型中的两冲程发动机清除

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The paper proposes the way of using scavenging curves, i.e., dependence of residual gas fraction in exhaust port or valve on residual fraction in a cylinder, found by CFD simulations. In the general case, exhaust gas recirculation outside of a cylinder (EGR) or internal gas recirculation caused by variable values of burned gas backflow to inlet system may influence in-cylinder residual gas fraction. These deviations may take place during engine optimization, done by 1D models. The determination of scavenging curves via 3D CFD simulations is a time consuming process, which cannot be repeated for every 1D case. The way of generalization of scavenging curves is based on reduction of cylinder burned gas contents (cylinder residual ratio) to scavenging progress variable, and reduction of burned gas contents in exhaust port gas flow (exhaust residual ratio), which makes the use of single result of 3D simulation possible for more variants of inlet timing or different pressure drop between inlet and exhaust system. The reduction is based on a stepwise integrated burned gas contents in fresh charge for every 1D simulated case. By this way, the procedure developed accelerates the optimization process substantially. The important condition is compatibility between 1D and 3D boundary conditions. The results are validated using dedicated 3D simulations.
机译:本文提出了使用清除曲线的方式,即排气口或阀门残余气体分数的依赖性通过CFD模拟发现。在一般情况下,由燃烧气体回流的可变值与入口系统的可变值引起的气缸(EGR)或内部气体再循环外的废气再循环可能影响圆柱残余气体馏分。这些偏差可能在发动机优化期间发生,由1D模型完成。通过3D CFD模拟确定清除曲线是耗时的过程,其不能为每个1D案例重复。清除曲线的泛化方式是基于汽缸燃烧的气体含量(气缸残留比)的降低,以清除进度变量,以及排气口气流(排气残留比率)中的燃烧气体内容的降低,这使得单一结果使用对于入口和排气系统之间的进气时序或不同压降的更多变体,可以实现3D模拟。减少基于每1D模拟壳体的新鲜电荷的逐步集成的燃烧气体内容物。通过这种方式,该程序显着地加速了优化过程。重要条件是1D和3D边界条件之间的兼容性。使用专用的3D模拟验证结果。

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