PG-EAM - Graduate Program in Aeronautical and Mechanical Engineering
PT EN
Article 2017

On the eddy-resolving capability of high-order discontinuous Galerkin approaches to implicit LES / under-resolved DNS of Euler turbulence

Authors

Mengaldo, G.
Peiró, J.
Sherwin, S. J.

Journal of Computational Physics , vol. 330 , pp. 615-623

ISSN: 00219991

118
Citations
4
Authors

Abstract

© 2016 The AuthorsWe present estimates of spectral resolution power for under-resolved turbulent Euler flows obtained with high-order discontinuous Galerkin (DG) methods. The ‘1% rule’ based on linear dispersion–diffusion analysis introduced by Moura et al. (2015) [10] is here adapted for 3D energy spectra and validated through the inviscid Taylor–Green vortex problem. The 1% rule estimates the wavenumber beyond which numerical diffusion induces an artificial dissipation range on measured energy spectra. As the original rule relies on standard upwinding, different Riemann solvers are tested. Very good agreement is found for solvers which treat the different physical waves in a consistent manner. Relatively good agreement is still found for simpler solvers. The latter however displayed spurious features attributed to the inconsistent treatment of different physical waves. It is argued that, in the limit of vanishing viscosity, such features might have a significant impact on robustness and solution quality. The estimates proposed are regarded as useful guidelines for no-model DG-based simulations of free turbulence at very high Reynolds numbers.

Keywords

Dispersion–diffusion analysis Euler turbulence High-order discontinuous Galerkin Implicit LES Inviscid Taylor–Green vortex Under-resolved DNS

Numerical Analysis (MATH) Modeling and Simulation (MATH) Physics and Astronomy (miscellaneous) (PHYS) Physics and Astronomy (all) (PHYS) Computer Science Applications (COMP) Computational Mathematics (MATH) Applied Mathematics (MATH)
: Scopus
Last Update: 2026-06-25
: 2-s2.0-85028258051
PII: S0021999116305642