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Development of a two zone turbulence model and its application to the cycle-simulation

机译:两区湍流模型的建立及其在循环模拟中的应用

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The development of a two zone k-ε turbulence model for the cycle-simulation software is presented. The in-cylinder turbulent flow field of internal combustion engines plays the most important role in the combustion process. Turbulence has a strong influence on the combustion process because the convective deformation of the flame front as well as the additional transfer of the momentum, heat and mass can occur. The development and use of numerical simulation models are prompted by the high experimental costs, lack of measurement equipment and increase in computer power. In the cycle-simulation codes, multi zone models are often used for rapid and robust evaluation of key engine parameters. The extension of the single zone turbulence model to the two zone model is presented and described. Turbulence analysis was focused only on the high pressure cycle according to the assumption of the homogeneous and isotropic turbulent flow field. Specific modifications of differential equation derivatives were made in both cases (single and two zone). Validation was performed on two engine geometries for different engine speeds and loads. Results of the cyclesimulation model for the turbulent kinetic energy and the combustion progress variable are compared with the results of 3D-CFD simulations. Very good agreement between the turbulent kinetic energy during the high pressure cycle and the combustion progress variable was obtained. The two zone k-ε turbulence model showed a further progress in terms of prediction of the combustion process by using only the turbulent quantities of the unburned zone.
机译:提出了一种用于循环仿真软件的两区k-ε湍流模型的开发。内燃发动机的缸内湍流场在燃烧过程中起着最重要的作用。湍流对燃烧过程有很大的影响,因为会发生火焰前沿的对流变形以及动量,热量和质量的额外传递。数值模拟模型的开发和使用是由高昂的实验成本,缺乏测量设备和计算机能力的增强所推动的。在循环仿真代码中,通常使用多区域模型来快速而可靠地评估关键发动机参数。提出并描述了单区湍流模型到两区模型的扩展。根据均质和各向同性湍流场的假设,湍流分析仅集中在高压循环上。在两种情况下(单个和两个区域)都对微分方程导数进行了特殊修改。针对不同的发动机转速和负载,对两种发动机几何形状进行了验证。将湍流动能和燃烧过程变量的循环仿真模型的结果与3D-CFD仿真的结果进行了比较。在高压循环期间的湍动能与燃烧过程变量之间获得了很好的一致性。通过仅使用未燃烧区的湍流量,两区k-ε湍流模型在燃烧过程的预测方面显示出进一步的进展。

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