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A Cycle-to-Cycle Variation Extraction Method for Flow Field Analysis in SI IC Engines Based on Turbulence Scales

机译:基于湍流尺度的SI IC发动机流场分析的循环到周期变化提取方法

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To adhere to stringent environmental regulations, SI (spark ignition) engines are required to achieve higher thermal efficiency. In recent years, EGR (exhaust gas recirculation) systems and lean-burn operation has been recognized as key technologies. Under such operating conditions, reducing CCV (cycle-to-cycle variation) in combustion is critical to the enhancement of overall engine performance. Flow-field CCV is one of the considerable factors affecting combustion in engines. Conventionally, in research on flow fields in SI engines, the ensemble average is used to separate the measured velocity field into a mean component and a fluctuation component, the latter of which contains a CCV component and a turbulent component. To extract the CCV of the flow field, previous studies employed spatial filter, temporal filter, and POD (proper orthogonal decomposition) methods. Those studies used a constant- separation filter size for the whole crank angle, although the turbulence scales change rapidly during the intake and compression stroke processes. Hence the definition of filter size has some room to be explored in order to take account of these features. The objective of this research is to improve the method of separating the CCV component using turbulence scales. For this purpose, high-speed PIV measurement was conducted on the symmetrical vertical plane for an optical IC engine at repetition rates of 12 kHz (1 C. A. deg. resolution) for the whole in-cylinder area and 48 kHz (0.25 C. A. deg. resolution) for the plug position. The measured data were separated into CCV and turbulent components by using the proposed filter, whose size was selected adaptively considering the integral time scale of the turbulent flow. The effect of time resolution on the filter size was then elucidated.
机译:要坚持严格的环境法规,需要SI(火花点火)发动机来实现更高的热效率。近年来,EGR(废气再循环)系统和瘦燃烧操作已被认为是关键技术。在这种操作条件下,降低燃烧中的CCV(周期到循环变化)对于增强整体发动机性能至关重要。流场CCV是影响发动机燃烧的相当大因素之一。传统上,在Si发动机的流场的研究中,集合平均值用于将测量的速度场分离成平均分量和波动分量,其后者包含CCV成分和湍流部件。为了提取流场的CCV,先前的研究采用空间滤波器,时间滤波器和POD(适当的正交分解)方法。这些研究使用了整个曲柄角的恒定分离滤波器尺寸,尽管在进气和压缩行程过程中湍流尺度迅速变化。因此,过滤器大小的定义有一些要探索的空间,以便考虑这些功能。本研究的目的是通过湍流尺度改善分离CCV成分的方法。为此目的,以12kHz(1CA DEG型号)的重复速率为12kHz(1 CA Deg。分辨率)的光学IC发动机对对称垂直平面进行高速PIV测量。(0.25 Ca Deg。分辨率) )对于插头位置。通过使用所提出的滤波器将测量的数据分离为CCV和湍流部件,其尺寸适自适应地考虑湍流的积分时间量表。然后阐明了时间分辨率对滤光片尺寸的影响。

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