Alignments of Triad Phases in 1D Burgers and 3D Navier-Stokes Flows
Di Kang, Bartosz Protas, Miguel D. Bustamante

TL;DR
This study investigates the phase alignments in triadic interactions of 1D Burgers and 3D Navier-Stokes flows, revealing how coherence levels influence energy fluxes across scales in different flow scenarios.
Contribution
It introduces novel diagnostic tools to analyze phase coherence in triadic interactions and compares their roles in extreme and generic flow conditions.
Findings
Extreme flows show similar enstrophy amplification but differ in modal interaction coherence.
In Burgers flows, flux-carrying triads maximize nonlinearity, enhancing small-scale energy transfer.
In Navier-Stokes flows, energy transfer involves a small subset of helical triads.
Abstract
The goal of this study is to analyze the fine structure of nonlinear modal interactions in different 1D Burgers and 3D Navier-Stokes flows. This analysis is focused on preferential alignments characterizing the phases of Fourier modes participating in triadic interactions, which are key to determining the nature of energy fluxes between different scales. We develop novel diagnostic tools designed to probe the level of coherence among triadic interactions realizing different flow scenarios. We consider extreme 1D viscous Burgers flows and 3D Navier-Stokes flows which are complemented by singularity-forming inviscid Burgers flows as well as viscous Burgers flows and Navier-Stokes flows corresponding to generic turbulent and simple unimodal initial data, such as the Taylor-Green vortex. The main finding is that while the extreme viscous Burgers and Navier-Stokes flows reveal the same…
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Taxonomy
TopicsFluid Dynamics and Turbulent Flows · Fluid Dynamics and Vibration Analysis · Nonlinear Dynamics and Pattern Formation
