Interscale energy transfer in turbulent channels

Fuente: arXiv
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Autori principali: Chen, Joy, Garcia-Mayoral, Ricardo
Natura: Preprint
Pubblicazione: 2025
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author Chen, Joy
Garcia-Mayoral, Ricardo
author_facet Chen, Joy
Garcia-Mayoral, Ricardo
contents We investigate the energy cascade in wall-bounded turbulence by analysing the interscale transfer between streamwise and spanwise length scales in periodic channels. This transfer originates from the nonlinear interactions in the advective term of the Navier-Stokes equations, which satisfy the classical triadic compatibility relations. Each triadic interaction is examined individually, and its corresponding nonlinear momentum and energy transfer are mapped to assess its relative importance in sustaining turbulence. Motivated by the anisotropy of the flow, we interpret each contribution $\partial_i(u_i u_j)$ to the advection term as carrying distinct physical information, and therefore analyse them separately. Time-averaged maps of the energy transfer across all length scales and wall-normal positions for a channel flow at $Re_τ\approx 180$ are used to explore the mechanisms underlying the cascade process. As a proof of concept, reduced-order simulations are performed by retaining only the interactions identified as responsible for significant energy transfer based on our framework. Turbulent dynamics are successfully reproduced when 30% or more of the total interactions are included, while noticeable deviations emerge in the near-wall region when this proportion is further reduced.
format Preprint
id arxiv_https___arxiv_org_abs_2511_05428
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Interscale energy transfer in turbulent channels
Chen, Joy
Garcia-Mayoral, Ricardo
Fluid Dynamics
We investigate the energy cascade in wall-bounded turbulence by analysing the interscale transfer between streamwise and spanwise length scales in periodic channels. This transfer originates from the nonlinear interactions in the advective term of the Navier-Stokes equations, which satisfy the classical triadic compatibility relations. Each triadic interaction is examined individually, and its corresponding nonlinear momentum and energy transfer are mapped to assess its relative importance in sustaining turbulence. Motivated by the anisotropy of the flow, we interpret each contribution $\partial_i(u_i u_j)$ to the advection term as carrying distinct physical information, and therefore analyse them separately. Time-averaged maps of the energy transfer across all length scales and wall-normal positions for a channel flow at $Re_τ\approx 180$ are used to explore the mechanisms underlying the cascade process. As a proof of concept, reduced-order simulations are performed by retaining only the interactions identified as responsible for significant energy transfer based on our framework. Turbulent dynamics are successfully reproduced when 30% or more of the total interactions are included, while noticeable deviations emerge in the near-wall region when this proportion is further reduced.
title Interscale energy transfer in turbulent channels
topic Fluid Dynamics
url https://arxiv.org/abs/2511.05428