评估用于粗网格 RANS 模拟的壁模型

IF 1.9 3区 工程技术 Q1 NUCLEAR SCIENCE & TECHNOLOGY Annals of Nuclear Energy Pub Date : 2024-08-05 DOI:10.1016/j.anucene.2024.110807
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引用次数: 0

摘要

本文在工程应用的粗网格 CFD 模拟中评估了不同边界条件在模拟带热传导的湍流、单相流中的适用性和准确性。对相关湍流量的标准壁面函数进行了扩展,以包括几何相关效应,并将其作为现有 OpenFOAM 求解器的边界条件以及一套基于经验相关性的粗网格壁面模型加以实施。在可以提供高保真模拟的数值实验模拟中对不同模型进行了测试,结果表明,总体而言,应用新的边界条件集可以在评估条件下对流向速度和温度进行令人满意的预测,即使第一个单元中心远离壁面时也是如此。与传统的壁面处理方法相比,所分析的扩展和修正在粗离散化的精度和计算速度之间取得了更好的平衡。
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Assessment of wall models for coarse-mesh RANS simulations

In the present article, the applicability and accuracy of different boundary conditions for the simulation of turbulent, single-phase flows with heat transfer were assessed within the context of coarse-mesh CFD simulations for engineering applications. Standard wall functions for relevant turbulent quantities were extended to include geometry-dependent effects and implemented as boundary conditions for existing OpenFOAM solvers, along with a set of coarse-mesh wall models based on empirical correlations. The different models were tested in the simulation of numerical experiments where high-fidelity simulations can be provided and, in general, results show that the application of the new set of boundary conditions produces a satisfactory prediction of the streamwise velocity and temperature in the evaluated conditions, even when the first cell center is far from the wall. The analyzed extensions and corrections produce a better balance between accuracy and computational speed for coarse discretization, compared to traditional wall treatments.

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来源期刊
Annals of Nuclear Energy
Annals of Nuclear Energy 工程技术-核科学技术
CiteScore
4.30
自引率
21.10%
发文量
632
审稿时长
7.3 months
期刊介绍: Annals of Nuclear Energy provides an international medium for the communication of original research, ideas and developments in all areas of the field of nuclear energy science and technology. Its scope embraces nuclear fuel reserves, fuel cycles and cost, materials, processing, system and component technology (fission only), design and optimization, direct conversion of nuclear energy sources, environmental control, reactor physics, heat transfer and fluid dynamics, structural analysis, fuel management, future developments, nuclear fuel and safety, nuclear aerosol, neutron physics, computer technology (both software and hardware), risk assessment, radioactive waste disposal and reactor thermal hydraulics. Papers submitted to Annals need to demonstrate a clear link to nuclear power generation/nuclear engineering. Papers which deal with pure nuclear physics, pure health physics, imaging, or attenuation and shielding properties of concretes and various geological materials are not within the scope of the journal. Also, papers that deal with policy or economics are not within the scope of the journal.
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