隐式大涡模拟低耗散有限体积求解器的验证

IF 2.5 3区 工程技术 Q3 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Giove De Cosmo , Luca di Mare , Mauro Carnevale
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引用次数: 0

摘要

在湍流建模领域,隐式大涡模拟(iLES)以其低成本和易于实现而备受关注。这种优势依赖于没有亚网格尺度模型,因为数值方案的耗散被假设与未解决湍流的行为相匹配。在计算流体动力学的传统非定常rans代码中实现iLES模型并不是一个简单的练习,因为大多数用于Navier-Stokes方程离散化的经典格式都证明过于耗散。本文提出了一种在有限体积离散情况下传统的Roe流差分裂方案的低耗散修正方法。修复包括有选择地缩放Roe矩阵的特征值,以根据需要通过标量参数降低数值耗散。将Roe方案的低耗散版本在现有的有限体积可压缩壁分辨URANS代码中实现,以获得iLES模型。首先用均匀流涡旋输运这一基本试验实例对求解方法进行了验证。然后在均匀各向同性湍流的衰减上适当校准标量参数,以确保物理意义。最后在实际湍流中对iLES模型进行了鲁棒性验证。结果表明,相对简单的修复可以在平壁通道流和凹凸壁通道流上获得与基准DNS数据非常一致的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Validation of a low-dissipation Finite-Volume solver for implicit Large-Eddy Simulation
In the field of turbulent flow modelling, implicit Large-Eddy Simulation (iLES) is appealing for its low cost and ease of implementation. Such advantages rely on the absence of a sub-grid scale model, since the dissipation of the numerical scheme is assumed to match the behaviour of unresolved turbulence. The implementation of an iLES model in traditional Unsteady-RANS codes for Computational Fluid Dynamics is not a straightforward exercise, as most of the classical schemes used for the discretisation of the Navier–Stokes equations prove too dissipative. This work presents a low-dissipation fix for the traditional Flux-Difference Splitting scheme of Roe in the context of Finite-Volume discretisations. The fix consists in selectively scaling the eigenvalues of the Roe matrix to lower the numerical dissipation as needed, by means of a scalar parameter. The low-dissipation version of the Roe scheme is implemented in an existing Finite-Volume compressible wall-resolved URANS code, to obtain an iLES model. The solver is first verified on a fundamental test case, i.e. vortex transport in uniform flow. The scalar parameter is then properly calibrated on the decay of Homogeneous Isotropic Turbulence, to ensure physical meaningfulness. A robust validation of the iLES model is finally presented on realistic turbulent flows. Results show that a relatively simple fix can achieve excellent agreement with the benchmark DNS data on a flat-wall channel flow and a bumped-wall channel flow.
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来源期刊
Computers & Fluids
Computers & Fluids 物理-计算机:跨学科应用
CiteScore
5.30
自引率
7.10%
发文量
242
审稿时长
10.8 months
期刊介绍: Computers & Fluids is multidisciplinary. The term ''fluid'' is interpreted in the broadest sense. Hydro- and aerodynamics, high-speed and physical gas dynamics, turbulence and flow stability, multiphase flow, rheology, tribology and fluid-structure interaction are all of interest, provided that computer technique plays a significant role in the associated studies or design methodology.
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