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Prediction of Formula 1 engine and airbox performance using coupled virtual 4-stroke and CFD simulations

机译:使用耦合虚拟4行程和CFD仿真预测式1发动机和空气箱性能

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This paper describes a technique whereby race car airbox performance can be assessed directly in terms of predicted engine performance by coupling a one-dimensional engine model on a timestep-by-timestep basis to a three-dimensional computational fluid dynamics (CFD) model of an airbox. A high-performance three-liter V10 engine was modeled using Virtual 4-Stroke unsteady gas dynamics engine simulation software, while two airbox configurations, representative of those used in FIA Formula 1 (F1), were modeled using general purpose CFD software. Results are presented that compare predicted engine performance for the two airbox geometries considered in the coupled simulations. Individual cylinder performance values are also presented and these show significant variations across the ten cylinders for each airbox simulated. CFD results show that pressure waves propagating from the bellmouths of the inlet trumpets produce highly complex and unsteady flows in airboxes, including reverse flow at the inlet trumpets. The results demonstrate the sensitivity of the coupled engine and airbox simulation technique to changes in airbox geometry, and also emphasize the three- dimensional and transient nature of the airflow in an airbox that is connected to a breathing engine. The limitations of steady flow airbox CFD simulations are highlighted when compared to the coupled simulations. It is concluded that a one-dimensional engine model coupled to a three-dimensional CFD model is an extremely effective method of predicting Formula 1 engine and airbox performance.
机译:本文介绍了一种技术,由此通过耦合一维的发动机模型,可以直接在预测的发动机性能方面直接评估,通过时间步骤逐步地耦合到一个三维计算流体动力学(CFD)模型的三维计算流体动力学(CFD)模型。空气箱。使用Virtual 4-Stroke非定常的气体动力学发动机仿真软件建模了高性能三升V10发动机,而使用通用CFD软件建模了两个空中配置,代表FIA公式1(F1)中使用的那些。提出了比较在耦合模拟中考虑的两个空中箱几何形状的预测发动机性能的结果。还提出了各个气缸性能值,并且这些具有模拟的每个空气箱的10个气缸上的显着变化。 CFD结果表明,从入口喇叭的贝尔茅斯传播的压力波在空气箱中产生高度复杂和不稳定的流动,包括入口喇叭处的反向流动。结果证明了耦合发动机和空气箱仿真技术对空气箱几何形状的变化的灵敏度,并且还强调了连接到呼吸发动机的空气箱中的气流的三维和瞬态性质。与耦合模拟相比,突出了稳定流动空气箱CFD模拟的局限性。得出结论,耦合到三维CFD模型的一维发动机模型是预测公式1发动机和空气箱性能的极其有效的方法。

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