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首页> 外文期刊>International journal of numerical methods for heat & fluid flow >A strategy for large-scale scalar advection in large eddy simulations that use the linear eddy sub-grid mixing model
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A strategy for large-scale scalar advection in large eddy simulations that use the linear eddy sub-grid mixing model

机译:使用线性涡流子网格混合模型的大型涡流模拟中的大规模标量对流策略

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Purpose - The purpose of this numerical work is to present and test a new approach for large-scale scalar advection (splicing) in large eddy simulations (LES) that use the linear eddy sub-grid mixing model (LEM) called the LES-LEM. Design/methodology/approach - The new splicing strategy is based on an ordered flux of spliced LEM segments. The principle is that low-flux segments have less momentum than high-flux segments and, therefore, are displaced less than high-flux segments. This strategy affects the order of both inflowing and outflowing LEM segments of an LES cell. The new splicing approach is implemented in a pressure-based fluid solver and tested by simulation of passive scalar transport in a co-flowing turbulent rectangular jet, instead of combustion simulation, to perform an isolated investigation of splicing. Comparison of the new splicing with a previous splicing approach is also done. Findings - The simulation results show that the velocity statistics and passive scalar mixing are correctly predicted using the new splicing approach for the LES-LEM It is argued that modeling of large-scale advection in the LES-LEM via splicing is reasonable, and the new splicing approach potentially captures the physics better than the old approach. The standard LES sub-grid mixing models do not represent turbulent mixing in a proper way because they do not adequately represent molecular diffusion processes and counter gradient effects. Scalar mixing in turbulent flow consists of two different processes, i.e. turbulent mixing that increases the interface between unmixed species and molecular diffusion. It is crucial to model these two processes individually at their respective time scales. The LEM explicitly includes both of these processes and has been used successfully as a sub-grid scalar mixing model (McMurtry et aL, 1992; Sone and Menon, 2003). Here, the turbulent mixing capabilities of the LES-LEM with a modified splicing treatment are examined. Originality/value - The splicing strategy proposed for the LES-LEM is original and has not been investigated before. Also, it is the first LES-LEM implementation using unstructured grids.
机译:目的-这项数值研究的目的是介绍和测试一种新的大规模涡旋模拟(LES)中的大规模标量对流(拼接)方法,该方法使用称为LES-LEM的线性涡流子网格混合模型(LEM) 。设计/方法/方法-新的拼接策略基于拼接的LEM段的有序通量。原理是,低通量段的动量要比高通量段的动量小,因此其位移要小于高通量段的动量。此策略影响LES单元的LEM段的流入和流出顺序。新的拼接方法在基于压力的流体求解器中实现,并通过模拟并流湍流矩形射流中的无源标量传输(而不是燃烧仿真)进行测试,以进行孤立的拼接研究。还完成了新拼接与以前的拼接方法的比较。研究结果-仿真结果表明,使用LES-LEM的新拼接方法可以正确预测速度统计信息和被动标量混合。拼接方法可能比旧方法更好地捕获物理。标准LES子网格混合模型不能正确表示湍流混合,因为它们不能充分表示分子扩散过程和反梯度效应。湍流中的标量混合包括两个不同的过程,即,湍流混合增加了未混合物质与分子扩散之间的界面。至关重要的是分别在它们各自的时间尺度上对这两个过程进行建模。 LEM明确包括这两个过程,并已成功用作亚网格标量混合模型(McMurtry等,1992; Sone和Menon,2003)。在这里,检查了LES-LEM经过改进的拼接处理后的湍流混合能力。原创性/价值-为LES-LEM提出的拼接策略是原创的,之前尚未进行过研究。而且,这是第一个使用非结构化网格的LES-LEM实现。

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