Relative accuracy of turbulence simulations using pseudo-spectral and finite difference solvers

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Main Authors: Rodhiya, Akash, Bhattacharya, Shashwat, Verma, Mahendra K
Format: Preprint
Published: 2025
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author Rodhiya, Akash
Bhattacharya, Shashwat
Verma, Mahendra K
author_facet Rodhiya, Akash
Bhattacharya, Shashwat
Verma, Mahendra K
contents For a single timestep, a spectral solver is known to be more accurate than its finite-difference counterpart. However, as we show in this paper, turbulence simulations using the two methods have nearly the same accuracy. In this paper, we simulate forced hydrodynamic turbulence on a uniform 256$^3$ grid for Reynolds numbers 965, 1231, 1515, and 1994. We show that the two methods yield nearly the same evolution for the total energy and the flow profiles. In addition, the steady-state energy spectrum, energy flux, and probability distribution functions of the velocity and its derivatives are very similar. We argue that within a turbulence attractor, the numerical errors are likely to get cancelled (rather than get added up), which leads to similar results for the finite-difference and spectral methods. These findings are very valuable, considering that a parallel finite-difference simulation is more versatile and efficient (for large grids) than its spectral counterpart.
format Preprint
id arxiv_https___arxiv_org_abs_2508_10808
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Relative accuracy of turbulence simulations using pseudo-spectral and finite difference solvers
Rodhiya, Akash
Bhattacharya, Shashwat
Verma, Mahendra K
Fluid Dynamics
Computational Physics
For a single timestep, a spectral solver is known to be more accurate than its finite-difference counterpart. However, as we show in this paper, turbulence simulations using the two methods have nearly the same accuracy. In this paper, we simulate forced hydrodynamic turbulence on a uniform 256$^3$ grid for Reynolds numbers 965, 1231, 1515, and 1994. We show that the two methods yield nearly the same evolution for the total energy and the flow profiles. In addition, the steady-state energy spectrum, energy flux, and probability distribution functions of the velocity and its derivatives are very similar. We argue that within a turbulence attractor, the numerical errors are likely to get cancelled (rather than get added up), which leads to similar results for the finite-difference and spectral methods. These findings are very valuable, considering that a parallel finite-difference simulation is more versatile and efficient (for large grids) than its spectral counterpart.
title Relative accuracy of turbulence simulations using pseudo-spectral and finite difference solvers
topic Fluid Dynamics
Computational Physics
url https://arxiv.org/abs/2508.10808