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Numerical Evaluation of Combustion Regimes in a GDI Engine

机译:GDI发动机燃烧状态的数值评估

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摘要

There is significant interest in the gasoline direct-injection engine due to its potential for improvements in fuel consumption but it still remains an area of active research due to a number of challenges including the effect of cycle-by-cycle variations. The current paper presents the use of a 3D-CFD model using both the RANS and LES turbulence modelling approaches, and a Lagrangian DDM to model an early fuel injection event, to evaluate the regimes of combustion in a gasoline direct-injection engine. The velocity fluctuations were investigated as an average value across the cylinder and in the region between the spark plug electrodes. The velocity fluctuations near the spark plug electrodes were seen to be of lower magnitude than the globally averaged fluctuations but exhibited higher levels of cyclic variation due to the influence of the spark plug electrode and the pent-roof geometry on the in-cylinder flow field. Differences in the predicted flame structure due to differences in the predicted velocity fluctuations between RANS and LES modelling approaches were seen as a consequence of the inherently higher dissipation levels present in the RANS methodology. The increased cyclic variation in velocity fluctuations near the spark plug electrodes in the LES predictions suggested significant variation in the relative strength of the in-cylinder turbulence and that may subsequently result in a thickening of the propagating flame front from cycle-to-cycle in this region. Throughout this paper, the numerical results were validated against published experimental data of the same engine geometry under investigation.
机译:由于汽油直喷发动机具有改善燃料消耗的潜力,因此引起了人们极大的兴趣,但由于包括循环变化的影响在内的诸多挑战,它仍然是一个活跃的研究领域。本文介绍了使用RANS和LES湍流建模方法的3D-CFD模型,以及拉格朗日DDM建模早期燃油喷射事件的方法,以评估汽油直喷发动机的燃烧状态。将速度波动作为整个气缸以及火花塞电极之间区域中的平均值进行研究。火花塞电极附近的速度波动被认为比整体平均波动的幅度要小,但是由于火花塞电极和屋檐几何形状对缸内流场的影响,循环波动表现出较高的水平。 RANS和LES建模方法之间的预测速度波动之间存在差异,因此预测的火焰结构有所不同,这是RANS方法中固有的较高耗散水平的结果。在LES预测中,火花塞电极附近的速度波动周期性增加,这表明缸内湍流的相对强度发生了显着变化,这可能随后导致在每个循环中传播的火焰锋变大。区域。在整个本文中,数值结果是针对所研究的相同发动机几何形状的已发布实验数据进行验证的。

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