Applied Mathematics and Mechanics (English Edition) ›› 2026, Vol. 47 ›› Issue (9): 2109-2122.doi: https://doi.org/10.1007/s10483-026-3426-8

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High-order large eddy simulation of incompressible turbulent flow by variational multiscale method

Linfeng CHEN1,2,3(), Xianglu JIA1, Peng XU1,3, Yuhong DONG4, Jiafeng WU5, Chen NIU5, Jie ZHU5, Fuchang ZHOU5   

  1. 1.Ocean Institute, Northwestern Polytechnical University, Xi’an 710072, China
    2.Shenzhen Research Institute of Northwestern Polytechnical University, Shenzhen 518057, Guangdong Province, China
    3.Yangtze River Delta Research Institute, Northwestern Polytechnical University, Suzhou 215400, Jiangsu Province, China
    4.Shanghai Key Laboratory of Mechanics in Energy Engineering, Shanghai Institute of Applied Mathematics and Mechanics, School of Mechanics and Engineering Science, Shanghai University, Shanghai 200072, China
    5.Wuhan Second Ship Design and Research Institute, Wuhan 430205, China
  • Received:2026-04-02 Revised:2026-06-03 Published:2026-09-18
  • Contact: Linfeng CHEN, E-mail: chenlinfeng@nwpu.edu.cn
  • Supported by:
    Project supported by the National Natural Science Foundation of China (No. 12572252), the National Marine Defence Technology Innovation Center (No. 2023719-4), the Fundamental Research Fund for the Central Universities (No. D5000240079), the Basic and Applied Basic Research Foundation of Guangdong Province of China (No. 2024A1515240027), and the Major Basic Research Project of the Natural Science Foundation of Jiangsu Higher Education Institutions (No. 22KJA130001)

Abstract:

This paper introduces an hp-refinement high-order finite element discretization based on a modified hierarchical Jacobian polynomial basis into a residual-based large eddy simulation (LES) by variational multiscale method (VMM). A high-order finite element basis is achieved by means of p-refinement by introducing a modified hierarchical Jacobian polynomial basis. The benchmark turbulent channel flow is computed using in-house finite element codes with three different orders of the Jacobian polynomial basis. The near-wall flow field and turbulent statistical results obtained using the same degrees of freedom (DOFs) are compared. The results show that the accuracy is significantly improved with the increasing order. The transportation equation of the turbulent kinetic energy is then derived with the VMM, and statistical dissipations are presented to clarify the improvement in the numerical accuracy by high-order simulations. In addition, the matrix structures of linear systems built using different orders of polynomial basis are presented, and the variation in the computational cost with the order of the finite element basis is explained. Furthermore, comparison of the computational costs for cases with equivalently accurate results is made to assess the computational efficiency of the high-order numerical method. Consequently, the results provide compelling evidence for the power of the high-order LES technique with the hp-refinement discretization, which not only reduces the DOFs to be solved, but also achieves the higher computational efficiency than low-order methods.

Key words: large eddy simulation (LES), variational multiscale method (VMM), hp-refinement discretization, high-order finite element basis, computational efficiency

2010 MSC Number: 

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