Mesh–Order Independence in CFD Simulation

Accuracy and performance are key issues for CFD simulation. How to meet the specific accuracy requirements, as well as the optimal simulation performance, is always the research hotspot. This paper presents a general theory of Mesh-Order Independence that is used to guide the configuration of two of...

Full description

Bibliographic Details
Main Authors: Xinhai Xu, Hao Li, Yufei Lin
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
CFD
Online Access:https://ieeexplore.ieee.org/document/8812720/
id doaj-d940b5bc320c47168dcdf47eaf1aa52f
record_format Article
spelling doaj-d940b5bc320c47168dcdf47eaf1aa52f2021-03-30T00:02:50ZengIEEEIEEE Access2169-35362019-01-01711906911908110.1109/ACCESS.2019.29374508812720Mesh–Order Independence in CFD SimulationXinhai Xu0Hao Li1https://orcid.org/0000-0002-5028-2101Yufei Lin2National Innovation Institute of Defense Technology, Beijing, ChinaNational Innovation Institute of Defense Technology, Beijing, ChinaNational Innovation Institute of Defense Technology, Beijing, ChinaAccuracy and performance are key issues for CFD simulation. How to meet the specific accuracy requirements, as well as the optimal simulation performance, is always the research hotspot. This paper presents a general theory of Mesh-Order Independence that is used to guide the configuration of two of the most critical control parameters in a concrete CFD simulation process: grid spacing and discretization order. A concept of optimal mesh-order independent pair which can meet both accuracy and performance requirements at the same time is proposed and analyzed. To find the optimal Mesh-order independent pair, the Mesh-Order Independence is applied to high order FEM simulation, and the specific process and key technologies are detailed. Test and results of two benchmark cases, the Laplace equation and the Helmholtz equation, show that the Mesh-order theory proposed in this paper provides an important guidance for the grid spacing selection and discretization order configuration in practical simulation, especially in the case of high precision requirements. Specifically, only 6 pre-runs with low discretization orders and coarse meshes are needed for the both cases to have a prediction accuracy of more than 70%.https://ieeexplore.ieee.org/document/8812720/Mesh–Order independencegrid spacingdiscretization orderhigh-order FEMCFD
collection DOAJ
language English
format Article
sources DOAJ
author Xinhai Xu
Hao Li
Yufei Lin
spellingShingle Xinhai Xu
Hao Li
Yufei Lin
Mesh–Order Independence in CFD Simulation
IEEE Access
Mesh–Order independence
grid spacing
discretization order
high-order FEM
CFD
author_facet Xinhai Xu
Hao Li
Yufei Lin
author_sort Xinhai Xu
title Mesh–Order Independence in CFD Simulation
title_short Mesh–Order Independence in CFD Simulation
title_full Mesh–Order Independence in CFD Simulation
title_fullStr Mesh–Order Independence in CFD Simulation
title_full_unstemmed Mesh–Order Independence in CFD Simulation
title_sort mesh–order independence in cfd simulation
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description Accuracy and performance are key issues for CFD simulation. How to meet the specific accuracy requirements, as well as the optimal simulation performance, is always the research hotspot. This paper presents a general theory of Mesh-Order Independence that is used to guide the configuration of two of the most critical control parameters in a concrete CFD simulation process: grid spacing and discretization order. A concept of optimal mesh-order independent pair which can meet both accuracy and performance requirements at the same time is proposed and analyzed. To find the optimal Mesh-order independent pair, the Mesh-Order Independence is applied to high order FEM simulation, and the specific process and key technologies are detailed. Test and results of two benchmark cases, the Laplace equation and the Helmholtz equation, show that the Mesh-order theory proposed in this paper provides an important guidance for the grid spacing selection and discretization order configuration in practical simulation, especially in the case of high precision requirements. Specifically, only 6 pre-runs with low discretization orders and coarse meshes are needed for the both cases to have a prediction accuracy of more than 70%.
topic Mesh–Order independence
grid spacing
discretization order
high-order FEM
CFD
url https://ieeexplore.ieee.org/document/8812720/
work_keys_str_mv AT xinhaixu meshx2013orderindependenceincfdsimulation
AT haoli meshx2013orderindependenceincfdsimulation
AT yufeilin meshx2013orderindependenceincfdsimulation
_version_ 1724188710009831424