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CFD-Modeling of fluid domains with embedded monoliths with emphasis on automotive converters

机译:CFD建模的嵌入式单块的强调汽车转换器

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摘要

A new approach for calculating flow domains with embedded monoliths is presented, focusing on a system suitable for an automotive converter. Using appropriate boundary conditions, the monolith itself can be excluded from the CFD computational domain, leaving two mapped computational domains upstream and downstream of the monolith. The resulting method enables more detailed results of the downstream flow profile than afforded by the commonly used porous body approach for simulating a monolith, but without the complexities of a full 3D calculation of the entire domain, including the monolith. The present approach was validated with experimental flow data from the literature collected with a prismatic (planar) monolith with approximately 4500 channels. Sensitivity studies were performed to check the influence of the downstream turbulence model, inlet turbulence boundary conditions, and spatial discretization schemes. RANS turbulence models (k-omega SST and k-epsilon) generally predict the experimentally measured flow profile downstream of the monolith although the transition to turbulence cannot be reproduced correctly. Currently, LES is the best approach for adequately describing the characteristics of flow downstream of monoliths.
机译:提出了一种用于计算具有嵌入式单线的流动域的新方法,专注于适用于汽车转换器的系统。使用适当的边界条件,可以从CFD计算域中排除单甘油的本身,在整体上游和下游留下两个映射的计算域。所得到的方法使下游流动曲线的更详细的结果能够由常用的多孔体方法提供了用于模拟整体的常用的多孔体方法,但是没有整个结构域的全3D计算的复杂性,包括整体。本方法用来自用大约4500个通道的棱镜(平面)整料收集的文献的实验流量数据验证。进行敏感性研究以检查下游湍流模型,入口湍流边界条件和空间离散化方案的影响。 RAN湍流模型(K-OMEGA SST和K-EPSILON)通常预测整体下游的实验测量的流动轮廓,尽管不能正确地再现到湍流的过渡。目前,LES是充分描述整料下游流动特性的最佳方法。

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