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A Quasi-Dimensional Model for Prediction of In-Cylinder Turbulence and Tumble Flow in a Spark-Ignited Engine

机译:用于预测火花点火发动机缸内湍流和滚筒流动的准尺寸模型

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Improving fuel efficiency and emission characteristics are significant issues in engine research. Because the engine has complex systems and various operating parameters, the experimental research is limited by cost and time. One-dimensional (1D) simulation has attracted the attention of researchers because of its effectiveness and relatively high accuracy. In a 1D simulation, the applied model must be accurate for the reliability of the simulation results. Because in-cylinder turbulence mainly determines the combustion characteristics, and mean flow velocity affects the in-cylinder heat transfer and efficiency in a spark-ignited (SI) engine, a number of sophisticated models have been developed to predict in-cylinder turbulence and mean flow velocity. In particular, tumble is a significant factor of in-cylinder turbulence in SI engine. The existing models introduced an angular momentum for the energy input and output of the cylinder and a decay function for geometric effects of the tumble change. However, this function cannot cover different engines, which have different tumble ratios; as a result, it should be re-calculated according to the engine. In this study, the developed quasi-dimensional (QD) turbulence model also adopts an angular momentum and decay function. The correlations of a decay function are found, and the function can be utilized for different engines with the minimum tuning constant. The coefficients of the function are related to the tumble ratio and the stroke-to-bore (SB) ratio. The model was validated with the results of mean flow velocity, turbulence intensity, and tumble ratio from three-dimensional computational fluid dynamics (3D CFD). The accuracy of the results was confirmed during the period from near the end of the compression stroke to the beginning of the expansion stroke that primarily affects combustion and heat transfer characteristics. In addition, the overall profiles of mean flow velocity, turbulence intensity, and tumble ratio are similar to 3D CFD results. This study shows that the model can be applied to engines with different tumble intensities over a range of engine speeds.
机译:提高燃油效率和排放特性是发动机研究中的重要问题。由于发动机具有复杂的系统和各种操作参数,因此实验研究受到成本和时间的限制。一维(1D)模拟引起了研究人员的注意,因为其有效性和较高的准确性。在1D仿真中,所应用的模型必须准确地用于仿真结果的可靠性。由于汽缸湍流主要决定燃烧特性,并且平均流速影响火花点燃(Si)发动机中的缸内传热和效率,因此已经开发了许多复杂的模型来预测缸内湍流和平均值流速。特别是,翻滚是SI发动机中缸内湍流的重要因素。现有模型引入了用于电池的能量输入和输出的角动量,以及用于翻滚变化的几何效果的衰减功能。然而,这种功能不能覆盖不同的发动机,其具有不同的滚筒比率;结果,它应该根据发动机重新计算。在本研究中,开发的准维(QD)湍流模型也采用了角动量和衰减功能。找到衰减功能的相关性,并且该功能可以用于具有最小调谐常数的不同发动机。该功能的系数与翻滚率和行程到孔(SB)的比率有关。该模型验证了来自三维计算流体动力学(3D CFD)的平均流速,湍流强度和翻滚比的结果。在从压缩冲程结束到膨胀中风的开始期间,结果的准确性得到了确认,主要影响燃烧和传热特性。另外,平均流速,湍流强度和翻滚比的整体轮廓类似于3D CFD结果。该研究表明,该模型可以应用于在一系列发动机速度范围内具有不同滚动强度的发动机。

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