The three effects of the pressure force on turbulent boundary layers

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Gungor, Taygun Recep, Gungor, Ayse Gul, Maciel, Yvan
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866913838974107648
author Gungor, Taygun Recep
Gungor, Ayse Gul
Maciel, Yvan
author_facet Gungor, Taygun Recep
Gungor, Ayse Gul
Maciel, Yvan
contents This study aims to isolate the three effects of the pressure force on the inner and outer layers: the local direct impact (characterized by the pressure gradient (PG) parameter, $β$), the local disequilibrating effect (represented here by the normalized streamwise derivative $dβ/dX$), and the upstream cumulative effect, while accounting for the inevitable Reynolds number influence. To achieve this objective, we draw on several non-equilibrium and near-equilibrium databases from the literature, and employ a methodology based on the selection of PG parameters that capture the local direct impact and the local disequilibration effect of the PG. The pressure force impact on the inner and outer regions is represented by two parameters: the friction-viscous PG parameter, $β_i$, and the PG parameter based on Zagarola-Smits velocity, $β_{ZS}$. In the non-equilibrium flow cases, both $β_i$ and $β_{ZS}$ exhibit similar distributions, initially increasing and then decreasing. However, the rate of change of these parameters along the streamwise direction varies among the flows, indicating differing levels of pressure force disequilibration. In the outer layer, it is found that both the local and cumulative disequilibrating effects modify the mean velocity and Reynolds stress profiles at identical $β_{ZS}$ values. In the inner layer, which responds much faster to changes in pressure force, the local disequilibrating effect still modifies the mean velocity profile in the viscous sublayer. Notably, when the mean velocity defect is significant, the behavior of u-structures in the inner layer appears to be governed by how outer turbulence responds to pressure force effects. In contrast, the size of uv-structures in the inner layer scales with the mixed pressure-friction length. Unlike inner u-structures, they are independent of large-scale outer structures and flow history.
format Preprint
id arxiv_https___arxiv_org_abs_2505_10011
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The three effects of the pressure force on turbulent boundary layers
Gungor, Taygun Recep
Gungor, Ayse Gul
Maciel, Yvan
Fluid Dynamics
This study aims to isolate the three effects of the pressure force on the inner and outer layers: the local direct impact (characterized by the pressure gradient (PG) parameter, $β$), the local disequilibrating effect (represented here by the normalized streamwise derivative $dβ/dX$), and the upstream cumulative effect, while accounting for the inevitable Reynolds number influence. To achieve this objective, we draw on several non-equilibrium and near-equilibrium databases from the literature, and employ a methodology based on the selection of PG parameters that capture the local direct impact and the local disequilibration effect of the PG. The pressure force impact on the inner and outer regions is represented by two parameters: the friction-viscous PG parameter, $β_i$, and the PG parameter based on Zagarola-Smits velocity, $β_{ZS}$. In the non-equilibrium flow cases, both $β_i$ and $β_{ZS}$ exhibit similar distributions, initially increasing and then decreasing. However, the rate of change of these parameters along the streamwise direction varies among the flows, indicating differing levels of pressure force disequilibration. In the outer layer, it is found that both the local and cumulative disequilibrating effects modify the mean velocity and Reynolds stress profiles at identical $β_{ZS}$ values. In the inner layer, which responds much faster to changes in pressure force, the local disequilibrating effect still modifies the mean velocity profile in the viscous sublayer. Notably, when the mean velocity defect is significant, the behavior of u-structures in the inner layer appears to be governed by how outer turbulence responds to pressure force effects. In contrast, the size of uv-structures in the inner layer scales with the mixed pressure-friction length. Unlike inner u-structures, they are independent of large-scale outer structures and flow history.
title The three effects of the pressure force on turbulent boundary layers
topic Fluid Dynamics
url https://arxiv.org/abs/2505.10011