首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >In-cylinder flow control in a four-valve spark ignition engine: numerical and experimental steady rig tests
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In-cylinder flow control in a four-valve spark ignition engine: numerical and experimental steady rig tests

机译:四气门火花点火发动机的缸内流量控制:数值和实验稳固台架试验

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Computational fluid dynamic (CFD) simulations and experimental steady flow tests (flow discharge, swirl, and tumble) were carried out to study the in-cylinder flow in a commercial four-valve spark ignition engine. The present investigation was aimed at analysing and controlling the generation of macro-vortex structures (swirl and tumble) during the inlet process. A comparative study of the most commonly employed tumble benches along with in-house design was performed, the last showing some advantages with respect to the others. The outcomes from the simulations were in agreement with experimental results. Mainly, the tumble generation rate was in general proportional to the valve lift. However, tumble was reduced drastically at medium valve lift due to a change in the vortex pattern. A stagnation zone was observed between inlet valves. CFD calculations successfully captured this tumble-fall effect, which was related to characteristic changes in the vortex pattern downstream of the inlet valves at medium valve lift. This affects tumble production without affecting the mass flowrate efficiency. Finally, at high valve lifts the tumble production and the vortex pattern were recovered. The capability of the cylinder head to induce swirl, tumble, or combined swirl-tumble by modifying the valve timing or by introducing adjustable flow deflectors was evaluated using CFD. Several valve timing strategies were analysed: some of them produced significant swirl, but introduced high mass flowrate losses. On the other hand, adjustable flow deflectors were shown to be an interesting alternative to induce swirl-tumble at low load and to improve tumble at high load.
机译:为了研究商用四气门火花点火发动机的缸内流量,进行了计算流体动力学(CFD)模拟和实验稳态流量测试(流量排放,涡旋和翻转)。本研究旨在分析和控制进气过程中大涡旋结构(涡旋和滚落)的产生。对最常用的转椅和室内设计进行了比较研究,最后一个展示了相对于其他的一些优势。模拟的结果与实验结果一致。主要地,翻滚产生速率通常与气门升程成比例。但是,由于涡流模式的变化,在中等气门升程时,滚落急剧减少。在进气门之间观察到停滞区。 CFD计算成功地捕获了这种滚落效应,这与中等气门升程时进气门下游的涡流模式的特征变化有关。这在不影响质量流量效率的情况下影响滚筒生产。最终,在高气门升程时,翻滚产生和涡旋模式得以恢复。使用CFD评估了气缸盖通过修改气门正时或通过引入可调节的导流板引起涡旋,翻转或组合涡旋翻转的能力。分析了几种气门正时策略:其中一些会产生明显的涡流,但会带来高的质量流量损失。另一方面,可调节的导流板被证明是一种有趣的替代方案,它可以在低负荷下引起涡流翻转,并在高负荷下改善涡流翻转。

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