Upstream history quantification and scale-decomposed energy analysis for weak-to-strong adverse-pressure-gradient turbulent boundary layers

Fuente: arXiv
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Autores principales: Mahajan, Atharva, Deshpande, Rahul, Gungor, Taygun R., Maciel, Yvan, Vinuesa, Ricardo
Formato: Preprint
Publicado: 2025
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author Mahajan, Atharva
Deshpande, Rahul
Gungor, Taygun R.
Maciel, Yvan
Vinuesa, Ricardo
author_facet Mahajan, Atharva
Deshpande, Rahul
Gungor, Taygun R.
Maciel, Yvan
Vinuesa, Ricardo
contents The present study delineates the effects of pressure gradient history and local disequilibration on the small and large-scale energy in turbulent boundary layers (TBLs) imposed with a broad range of adverse-pressure-gradients (APG). This is made possible by analyzing four published high-fidelity APG TBL databases, which span weak to strong APGs and cover dynamic conditions ranging from near-equilibrium to strong disequilibrium. The influence of PG history on TBL statistics is quantified by the accumulated PG parameter ($\overlineβ$), proposed previously by Vinuesa et al. (2017) to study integral quanitites, which is compared here between cases at matched local PG strength ($β$), Reynolds number ($Re$) and ${\rm d}β/{{\rm d}{Re}}$ at nominally similar orders of magnitude. While the effects of local disequilibration (${\rm d}β/{{\rm d}{Re}}$) are investigated by considering TBL cases at matched $β$, $Re$, and fairly matched $\overlineβ$. It is found that $\overlineβ$ cannot unambiguously capture history effects when ${\rm d}β/{{\rm d}{Re}}$ levels are significantly high, as it does not account for the delayed response of the mean flow and turbulence, nor the attenuation of the pressure gradient effect with distance. In two comparisons of APG TBLs under strong non-equilibrium, the values of $\overlineβ$ and ${\rm d}β/{\rm d}{Re}$ expressed using Zagarola-Smits scaling were found to be consistent with the trends in mean velocity defect and Reynolds stresses noted previously for weak APG TBLs. While an increase in $\overlineβ$ is associated with energisation of both the small and large scales in the outer regions of APG TBLs, it affects only the large scales in the near-wall region. This confirms the ability of near-wall small scales to rapidly adjust to changes in PG strength.
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id arxiv_https___arxiv_org_abs_2505_11787
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Upstream history quantification and scale-decomposed energy analysis for weak-to-strong adverse-pressure-gradient turbulent boundary layers
Mahajan, Atharva
Deshpande, Rahul
Gungor, Taygun R.
Maciel, Yvan
Vinuesa, Ricardo
Fluid Dynamics
The present study delineates the effects of pressure gradient history and local disequilibration on the small and large-scale energy in turbulent boundary layers (TBLs) imposed with a broad range of adverse-pressure-gradients (APG). This is made possible by analyzing four published high-fidelity APG TBL databases, which span weak to strong APGs and cover dynamic conditions ranging from near-equilibrium to strong disequilibrium. The influence of PG history on TBL statistics is quantified by the accumulated PG parameter ($\overlineβ$), proposed previously by Vinuesa et al. (2017) to study integral quanitites, which is compared here between cases at matched local PG strength ($β$), Reynolds number ($Re$) and ${\rm d}β/{{\rm d}{Re}}$ at nominally similar orders of magnitude. While the effects of local disequilibration (${\rm d}β/{{\rm d}{Re}}$) are investigated by considering TBL cases at matched $β$, $Re$, and fairly matched $\overlineβ$. It is found that $\overlineβ$ cannot unambiguously capture history effects when ${\rm d}β/{{\rm d}{Re}}$ levels are significantly high, as it does not account for the delayed response of the mean flow and turbulence, nor the attenuation of the pressure gradient effect with distance. In two comparisons of APG TBLs under strong non-equilibrium, the values of $\overlineβ$ and ${\rm d}β/{\rm d}{Re}$ expressed using Zagarola-Smits scaling were found to be consistent with the trends in mean velocity defect and Reynolds stresses noted previously for weak APG TBLs. While an increase in $\overlineβ$ is associated with energisation of both the small and large scales in the outer regions of APG TBLs, it affects only the large scales in the near-wall region. This confirms the ability of near-wall small scales to rapidly adjust to changes in PG strength.
title Upstream history quantification and scale-decomposed energy analysis for weak-to-strong adverse-pressure-gradient turbulent boundary layers
topic Fluid Dynamics
url https://arxiv.org/abs/2505.11787