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A cell-based smoothed finite element method for incompressible turbulent flows

Mingyang Liu (Key Laboratory of Traffic Safety on Track of Ministry of Education, Changsha, China and School of Traffic and Transportation Engineering, Central South University, Changsha, China)
Guangjun Gao (Key Laboratory of Traffic Safety on Track of Ministry of Education, Changsha, China and School of Traffic and Transportation Engineering, Central South University, Changsha, China)
Huifen Zhu (Key Laboratory of Traffic Safety on Track of Ministry of Education, Changsha, China and School of Traffic and Transportation Engineering, Central South University, Changsha, China)
Chen Jiang (Key Laboratory of Traffic Safety on Track of Ministry of Education, Changsha, China and School of Traffic and Transportation Engineering, Central South University, Changsha, China)

International Journal of Numerical Methods for Heat & Fluid Flow

ISSN: 0961-5539

Article publication date: 24 November 2021

Issue publication date: 5 January 2022

153

Abstract

Purpose

The purpose of this paper is to investigate the feasibility of solving turbulent flows based on smoothed finite element method (S-FEM). Then, the differences between S-FEM and finite element method (FEM) in dealing with turbulent flows are compared.

Design/methodology/approach

The stabilization scheme, the streamline-upwind/Petrov-Galerkin stabilization is coupled with stabilized pressure gradient projection in the fractional step framework. The Reynolds-averaged Navier-Stokes equations with standard k-epsilon model are selected to solve turbulent flows based on S-FEM and FEM. Standard wall functions are applied to predict boundary layer profiles.

Findings

This paper explores a completely new application of S-FEM on turbulent flows. The adopted stabilization scheme presents a good performance on stabilizing the flows, especially for very high Reynolds numbers flows. An advantage of S-FEM is found in applying wall functions comparing with FEM. The differences between S-FEM and FEM have been investigated.

Research limitations/implications

The research in this work is limited to the two-dimensional incompressible turbulent flow.

Practical implications

The verification and validation of a new combination are conducted by several numerical examples. The new combination could be used to deal with more complicated turbulent flows.

Social implications

The applications of the new combination to study basic and complex turbulent flow are also presented, which demonstrates its potential to solve more turbulent flows in nature and engineering.

Originality/value

This work carries out a great extension of S-FEM in simulations of fluid dynamics. The new combination is verified to be very effective in handling turbulent flows. The performances of S-FEM and FEM on turbulent flows were analyzed by several numerical examples. Superior results were found compared with existing results and experiments. Meanwhile, S-FEM has an advantage of accuracy in predicting boundary layer profile.

Keywords

Acknowledgements

The authors appreciate the support from National Key Research and Development Program of China (Grant No. 2020YFA0710901), National Natural Science Foundation of China (Grant No. 12002395), Science Foundation of Hunan Province (Grant No. 2019JJ50790), the starting fund for scientific research of Central South University, National Numerical Wind Tunnel Project (NNW2018-ZT1A02), Research and Innovation Program for postgraduates in Hunan Province (Grant No. CX20200192), and China Scholarship Council (Grant No. 202006370122).

Citation

Liu, M., Gao, G., Zhu, H. and Jiang, C. (2022), "A cell-based smoothed finite element method for incompressible turbulent flows", International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 32 No. 2, pp. 531-558. https://doi.org/10.1108/HFF-12-2020-0809

Publisher

:

Emerald Publishing Limited

Copyright © 2021, Emerald Publishing Limited

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