Casimir preserving numerical method for global multi-layer quasi-geostrophic turbulence
Artikel i vetenskaplig tidskrift, 2025

Accurate long-term predictions of large-scale flow features on planets are crucial for understanding global atmospheric and oceanic systems, necessitating the development of numerical methods that can preserve essential physical structures over extended simulation periods without excessive computational costs. Recent advancements in the study of global single-layer barotropic models have led to novel numerical methods based on Lie–Poisson discretization that preserve energy, enstrophy and higher-order moments of potential vorticity. This paper extends this approach to more complex stratified quasi-geostrophic (QG) systems on the sphere. These multi-layered models provide a more comprehensive representation of atmospheric and oceanic dynamics by accounting for vertical variations in density, pressure, and velocity fields. In this work, we present a formulation of the multi-layer QG equations on the full globe. This allows for extending the Lie–Poisson discretization to multi-layer QG models, ensuring consistency with the underlying structure and enabling long-term simulations without additional regularization. The numerical method is benchmarked through simulations of forced geostrophic turbulence and the long-term behaviour of unforced multi-layered systems. These results demonstrate the structure-preserving properties and robustness of the proposed numerical method, paving the way for a better understanding of the role of high-order conserved quantities in large-scale geophysical flow dynamics.

Lie–Poisson

Geostrophic turbulence

Geometric integrator

Structure-preservation

Sphere

Författare

Arnout Franken

Universiteit Twente

Erwin Luesink

Korteweg-de Vries Institute for Mathematics

Universiteit Twente

Sagy Ephrati

Chalmers, Matematiska vetenskaper, Tillämpad matematik och statistik

Göteborgs universitet

Bernard J. Geurts

Universiteit Twente

Center for Computational Energy Research

Journal of Computational Physics

0021-9991 (ISSN) 1090-2716 (eISSN)

Vol. 538 114155

Ämneskategorier (SSIF 2025)

Strömningsmekanik

Annan fysik

DOI

10.1016/j.jcp.2025.114155

Mer information

Senast uppdaterat

2025-06-22