Wall distance calculation using the Eikonal/Hamilton‐Jacobi equations on unstructured meshes

Author:

Liu C.‐B.,Nithiarasu P.,Tucker P.G.

Abstract

PurposeThe purpose of this paper is to numerically solve Eikonal and Hamilton‐Jacobi equations using the finite element method; to use both explicit Taylor Galerkin (TG) and implicit methods to obtain shortest wall distances; to demonstrate the implemented methods on some realistic problems; and to use iterative generalized minimal residual method (GMRES) method in the solution of the equations.Design/methodology/approachThe finite element method along with both the explicit and implicit time discretisations is employed. Two different forms of governing equations are also employed in the solution. The Eikonal equation in its original form is used in the explicit Taylor Galerkin discretisation to save computational time. For implicit method, however, the convection‐diffusion form in its conservation form is used to maintain spatial stability.FindingsThe finite element solution obtained is both accurate and smooth. As expected the implicit method is much faster than the explicit method. Though the proposed finite element solution procedures in serial is slower than the standard search procedure, they are suitable to be used in a parallel environment.Originality/valueThe finite element procedure for Eikonal and Hamilton‐Jacobi equations are attempted for the first time. Though the finite volume and finite difference‐based computational fluid dynamics (CFD) solvers have started employing differential equations for wall distance calculations, it is not common for finite element solvers to use such wall distance calculations. The results presented here clearly show that the proposed methods are suitable for unstructured meshes and finite element solvers.

Publisher

Emerald

Subject

Computational Theory and Mathematics,Computer Science Applications,General Engineering,Software

Cited by 10 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Euler-Euler Modeling of Poly-dispersed Bubbly Flows;Handbook of Multiphase Flow Science and Technology;2023

2. Wall Distance Computation Based on Higher-Order Variational Reconstruction on Unstructured Grids;Lecture Notes in Mechanical Engineering;2021

3. Numerical aspects of wall-distance computation for turbulence modeling;Journal of Physics: Conference Series;2019-11-01

4. Adaptive high-order discretization of the Reynolds-averaged Navier-Stokes equations;Computers & Fluids;2017-12

5. Euler-Euler Modeling of Poly-Dispersed Bubbly Flows;Handbook of Multiphase Flow Science and Technology;2016

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