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Cycle-to-cycle variation analysis of in-cylinder flow in a gasoline engine with variable valve lift

机译:可变气门升程的汽油发动机缸内流量的逐周期变化分析

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In spark ignition engines, cycle-to-cycle variation (CCV) limits the expansion of the operating range because it induces the load variations and the occurrence of misfire and/or knock. Variable valve actuation (VVA) or variable valve lift (VVL) has been widely used in SI engines to improve the volumetric efficiency or to reduce the pumping losses. It is necessary to investigate the CCV of in-cylinder gas motion and mixing processes in SI engines with VVA/VVL system. This study is aimed to analyze the CCV of the tumble flow in a gasoline direct injection (GDI) engine when VVL is employed. Cycle-resolved digital particle image velocimetry (CRD-PIV) data were acquired for the in-cylinder flow field of a motored four-stroke multi-valve GDI optical engine. The CCV of in-cylinder gas motion with a series of valve profiles and different maximum valve lift (MVL) was analyzed, including cyclic variation characteristics of bulk flow (tumble centre and tumble ratio), large- and small-scale fluctuation, total kinetic energy, and circulation. The results show that the CCV of the in-cylinder flow is increased with reduced MVL. With lower MVLs, stable tumble flow cannot be formed in the cylinder, and the ensemble-averaged tumble ratio decreases to zero before the end of the compression stroke due to violent variation. In addition, the evolution of the circulation shows larger variation with lower MVLs that indicates the ‘spin’ of the small-scale eddy in the flow field presents violent fluctuation from one cycle to another, especially at the end of the compression stroke. Moreover, the analyze of the kinetic energy indicates the total energy of the flow field with lower MVLs increases significantly comparing with higher MVL conditions due to the intake flow jet at the intake valve seat in the intake stroke. However, the CCV of the in-cylinder flow becomes more violent under lower MVL conditions, especially for the low-frequency fluctuation kinetic energy. Thus, present strong tumble flow can lower the CCV of the air motion. It is necessary to manage strong tumble or other bulk flow (such as swirl flow) in order to improve the stability of ignition and combustion for GDI engines with VVL, especially at the lower MVL conditions.
机译:在火花点火发动机中,逐周期变化(CCV)会限制工作范围的扩展,因为它会引起负载变化以及失火和/或爆震的发生。可变气门致动(VVA)或可变气门升程(VVL)已广泛用于SI发动机中,以提高容积效率或减少泵送损失。有必要研究带有VVA / VVL系统的SI发动机缸内气体运动和混合过程的CCV。本研究旨在分析采用VVL的汽油直喷(GDI)发动机中滚流的CCV。针对机动四冲程多阀GDI光学引擎的缸内流场,获取了周期分辨数字粒子图像测速(CRD-PIV)数据。分析了具有一系列气门曲线和不同最大气门升程(MVL)的缸内气体运动的CCV,包括总体流量(翻转中心和翻转比)的循环变化特征,大小波动,总动力学能量和循环。结果表明,缸内流的CCV随着MVL的降低而增加。使用较低的MVL时,无法在气缸中形成稳定的滚流,并且由于剧烈变化,在压缩冲程结束之前,合计平均滚流比减小为零。此外,循环的演变显示出较低的MVL,其变化较大,这表明流场中小涡旋的“自旋”呈现出从一个循环到另一个循环的剧烈波动,尤其是在压缩冲程结束时。此外,对动能的分析表明,由于进气冲程中进气阀座处的进气流喷射,MVL较低的流场的总能量与MVL较高的条件相比显着增加。但是,缸内流的CCV在较低的MVL条件下变得更加剧烈,尤其是对于低频波动动能而言。因此,当前强烈的滚流会降低空气运动的CCV。为了提高带VVL的GDI发动机的点火和燃烧的稳定性,尤其是在较低的MVL条件下,有必要管理强劲的滚流或其他大流量(例如旋流)。

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