Turbulent transport for wall shear stress fluctuations

Fuente: arXiv
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Autori principali: Lee, Myoungkyu, Hwang, Yongyun
Natura: Preprint
Pubblicazione: 2025
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author Lee, Myoungkyu
Hwang, Yongyun
author_facet Lee, Myoungkyu
Hwang, Yongyun
contents Statistical structure and the underlying energy budget of wall shear stress fluctuations are studied in both Poiseulle and Couette flows with emphasis on its streamwise component. Using a dimensional analysis and direct numerical simulation data, it is shown that the spectra of streamwise wall dissipation for $λ\lesssim 1000 δ_ν$ are asymptotically invariant with the Reynolds number ($Re$), whereas those for $λ\gtrsim δ$ decay with $Re$ (here, $λ$ is a nominal wall-parallel wavelength, and $δ_ν$ and $δ$ are the viscous inner and outer length scales, respectively). The wall dissipation increases with $Re$ due to the increasing contribution of the spectra at $1000 δ_ν\lesssim λ\lesssim δ$. The subsequent analysis of the energy budget shows that the near-wall motions associated with these wall dissipation spectra are mainly driven by turbulent transport and are `inactive' in the sense that they contain very little Reynolds shear stress (or turbulence production). As such, turbulent transport spectra near the wall are also found to share the same $Re$-scaling behaviour with wall dissipation, and this is observed in the spectra of both the wall-normal and inter-scale turbulent transports. The turbulent transport underpinning the increase of wall dissipation with $Re$ is characterised by energy fluxes towards the wall, together with inverse energy transfer from small to large length scales along the wall-parallel directions.
format Preprint
id arxiv_https___arxiv_org_abs_2510_13758
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Turbulent transport for wall shear stress fluctuations
Lee, Myoungkyu
Hwang, Yongyun
Fluid Dynamics
Statistical structure and the underlying energy budget of wall shear stress fluctuations are studied in both Poiseulle and Couette flows with emphasis on its streamwise component. Using a dimensional analysis and direct numerical simulation data, it is shown that the spectra of streamwise wall dissipation for $λ\lesssim 1000 δ_ν$ are asymptotically invariant with the Reynolds number ($Re$), whereas those for $λ\gtrsim δ$ decay with $Re$ (here, $λ$ is a nominal wall-parallel wavelength, and $δ_ν$ and $δ$ are the viscous inner and outer length scales, respectively). The wall dissipation increases with $Re$ due to the increasing contribution of the spectra at $1000 δ_ν\lesssim λ\lesssim δ$. The subsequent analysis of the energy budget shows that the near-wall motions associated with these wall dissipation spectra are mainly driven by turbulent transport and are `inactive' in the sense that they contain very little Reynolds shear stress (or turbulence production). As such, turbulent transport spectra near the wall are also found to share the same $Re$-scaling behaviour with wall dissipation, and this is observed in the spectra of both the wall-normal and inter-scale turbulent transports. The turbulent transport underpinning the increase of wall dissipation with $Re$ is characterised by energy fluxes towards the wall, together with inverse energy transfer from small to large length scales along the wall-parallel directions.
title Turbulent transport for wall shear stress fluctuations
topic Fluid Dynamics
url https://arxiv.org/abs/2510.13758