paper

The prediction of extreme uncertainty-production events in three-dimensional Navier-Stokes turbulence

arXiv:2608.05208

Abstract

We investigate the exponential growth of uncertainty energy in 3D Navier-Stokes turbulence, emphasising the intermittent and highly localized amplification/production of uncertainty, a critical factor in understanding the predictability of turbulent systems. From the Navier-Stokes equations one can identify some key fields contributing to the growth/decay of uncertainty-production term : strain rate, vorticity, and vortex deformation. The dynamics of these fields are examined in the plane, where and are the second and third invariants of the velocity gradient tensor, to understand their role in the evolution of uncertainty-production term . We proceed by estimating committor functions across the entire spatiotemporal domain of direct numerical simulations (DNS) of turbulence in a periodic domain at different Reynolds numbers. Our estimates of the probability of rare extreme events of local uncertainty-production term as a function of uncertainty energy, strain rate, vorticity, and vortex deformation confirm the role of strain rate in driving uncertainty. Where strain rate and vorticity are too close to their space-average values, stable probabilistic forecasts appear impossible solely on the basis of the fields considered here.