Adaptive numerical dissipation control for high-order k-exact reconstruction schemes on vertex-centered unstructured grids using artificial neural networks

被引:2
作者
Setzwein, Florian [1 ]
Ess, Peter [1 ]
Gerlinger, Peter [1 ]
机构
[1] Inst Combust Technol, German Aerosp Ctr DLR, D-70569 Stuttgart, Germany
关键词
High -order accuracy; Unstructured grids; Finite-volume method; Von Neumann stability analysis; Artificial neural networks; Adaptive numerical dissipation; LARGE-EDDY SIMULATION; FINITE-DIFFERENCE SCHEMES; VOLUME SCHEME; DIFFUSION; FLOW; FORMULATIONS; TURBULENCE; ACCURATE; NUMBER; LES;
D O I
10.1016/j.jcp.2022.111633
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Due to their enhanced numerical dissipation properties, high-order discretization methods are an important prerequisite to obtain accurate results with Large-Eddy Simulations. However, the exact amount of dissipation often requires a careful tuning by the user via problem-dependent parameters. In this work we present a fully adaptive dissipation control, which ensures stability and additionally reduces the numerical dissipation to a minimum. This novel approach employs a simple feedforward neural network model, which indirectly tabulates an underlying stability equation and thus reduces the computational overhead to estimate the dissipation during runtime. The methodology is adapted for a high-order k-exact reconstruction method on fully unstructured vertex -centered grids, and it is implemented in a full production flow solver. Based on several test cases, the enhanced accuracy compared to a conventional low-order scheme is demonstrated. Especially when dealing with Large-Eddy Simulation benchmarks, significant savings in computation time and grid resolution requirements can be obtained for reaching a desired level of accuracy. Moreover, compared to a high-order reconstruction method with constant numerical dissipation, the presented adaptive approach consistently yields accurate results, regardless of the flow problem.(c) 2022 Elsevier Inc. All rights reserved.
引用
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页数:32
相关论文
共 84 条
[31]   VELOCITY-MEASUREMENTS IN A HIGH-REYNOLDS-NUMBER, MOMENTUM-CONSERVING, AXISYMMETRICAL, TURBULENT JET [J].
HUSSEIN, HJ ;
CAPP, SP ;
GEORGE, WK .
JOURNAL OF FLUID MECHANICS, 1994, 258 :31-75
[32]   High-order methods for computational fluid dynamics: A brief review of compact differential formulations on unstructured grids [J].
Huynh, H. T. ;
Wang, Z. J. ;
Vincent, P. E. .
COMPUTERS & FLUIDS, 2014, 98 :209-220
[33]  
Jameson A., 1981, AIAA PAPER, DOI [DOI 10.2514/6.1981-1259, 10.2514/6.1981-1259]
[34]   Efficient implementation of weighted ENO schemes [J].
Jiang, GS ;
Shu, CW .
JOURNAL OF COMPUTATIONAL PHYSICS, 1996, 126 (01) :202-228
[35]   CONSERVATION PROPERTIES OF UNSTRUCTURED FINITE-VOLUME MESH SCHEMES FOR THE NAVIER-STOKES EQUATIONS [J].
Jofre, Lluis ;
Lehmkuhl, Oriol ;
Ventosa, Jordi ;
Trias, F. Xavier ;
Oliva, Assensi .
NUMERICAL HEAT TRANSFER PART B-FUNDAMENTALS, 2014, 65 (01) :53-79
[36]  
Khosla P. K., 1974, Computers & Fluids, V2, P207, DOI 10.1016/0045-7930(74)90014-0
[37]   Large eddy simulation of a circular jet: effect of inflow conditions on the near field [J].
Kim, Jungwoo ;
Choi, Haecheon .
JOURNAL OF FLUID MECHANICS, 2009, 620 :383-411
[38]  
Kingma DP, 2014, ADV NEUR IN, V27
[39]   Enhancement of an industrial finite-volume code for large-eddy-type simulation of incompressible high Reynolds number flow using near-wall modelling [J].
Knopp, Tobias ;
Zhang, Xiaoqin ;
Kessler, Roland ;
Lube, Gert .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2010, 199 (13-16) :890-902
[40]  
Kossaczká T, 2021, Arxiv, DOI arXiv:2103.04988