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Comparative study of turbulence models for scale-resolving simulations of internal combustion engine flows

机译:内燃机流动速度模拟湍流模型的比较研究

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Scale-resolving simulations (SRS) are becoming more and more important for internal combustion (IC) engine simulations and are gradually replacing first-generation unsteady Reynolds-averaged Navier-Stokes (URANS) based approaches. In addition to the substantial improvement in the prediction of the local flow and mixing processes and their interaction with the spray and the turbulent flame, SRS are essential for the quantification of cycle-to-cycle variation (CCV) of coherent structures and sporadically occurring phenomena such as misfire and knock. However, the choice of a suitable scale-resolving turbulence model for specific applications such as IC engine flows is still an unresolved issue even in the scientific community. Typically, turbulence models are developed and validated for well-defined test cases and it is not clear whether these findings are also valid for flows in complex geometries with moving boundaries, where local flow structures might be significantly different. The flow in IC engines is characterized by strongly varying Reynolds numbers and exhibits several flow phenomena such as wall boundary layers, stagnation points, free-stream shear layers and edge-induced flow separations. The current paper is a systematic comparative study of selected and well-established scale-resolving turbulence models in the context of an IC engine flow focussing especially on the intake stroke. Different classical LES models (Smagorinsky, WALE, Sigma), a hybrid model (DES-SST) and a second-generation URANS model with scale-resolving capabilities (SAS-SST) are compared against each other. The models' accuracy and capability to capture fluctuations, local flow structures and CCV during the tumble formation in the intake phase are investigated for a well-established IC engine benchmark case with a single non-moving valve. Though this is a simplified setup, it provides the unique possibility to compare the results to reference data obtained from experiment and direct numerical simulations (DNS). In a first step, the predicted averaged velocity and the resolved fluctuations obtained with the different models are compared to each other and to the reference data. Afterwards, the local structure of the resolved fluctuations is investigated in terms of an invariant analysis of the anisotropy tensor. Finally, the capability to resolve CCV is investigated based on the averaged and instantaneous tumble center, a large-scale flow structure specifically important for engine flows. (C) 2017 Elsevier Ltd. All rights reserved.
机译:尺度解析模拟(SRS)对于内燃(IC)发动机模拟变得越来越重要,并且逐渐替换了基于第一代非惰性雷诺平均的Navier-Stokes(Urans)的方法。除了在预测局部流动和混合过程的实质性提高及其与喷雾和湍流火焰的相互作用之外,SRS对于定量相干结构的循环到循环变化(CCV)和散发地发生的现象是必不可少的如失火和敲门声。然而,即使在科学界中,诸如IC发动机流的特定应用的特定应用的合适刻度湍流模型也是一个尚未解决的问题。通常,湍流模型是针对明确定义的测试用例开发和验证的,并且尚不清楚这些发现是否对具有移动边界的复杂几何形状中的流动,其中局部流动结构可能显着不同。 IC发动机的流动的特征在于雷诺数强烈变化,并且呈现几种流动现象,例如壁边界层,停滞点,自由流剪切层和边缘诱导的流动分离。目前的论文是在IC发动机流量的背景下的所选和良好的尺度分辨湍流模型的系统比较研究,特别是在进气冲程上。互相比较不同的古典LES模型(Smagorinsky,Wale,Sigma),混合模型(DES-SST)和具有比例解析功能(SAS-SST)的第二代urans模型。研究了在进气期间在进气相间滚动形成期间捕获波动,局部流动结构和CCV的模型,局部流动结构和CCV的能力,用于具有单个非移动阀的良好的IC发动机基准箱。虽然这是一个简化的设置,但它提供了将结果与实验和直接数值模拟(DNS)获得的参考数据进行比较的独特可能性。在第一步骤中,将预测的平均速度和用不同模型获得的分辨波动彼此进行比较和参考数据。之后,根据各向异性张量的不变分析,研究了分辨波动的局部结构。最后,基于平均和瞬时倾斜中心研究了解决CCV的能力,对于发动机流量特别重要的大规模流动结构。 (c)2017 Elsevier Ltd.保留所有权利。

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