Wall Wettability Control of Cavitation Patterns and Stability

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Tayerani, Parisa, Mousavi, Mahmood, Pasandidehfard, Mahmoud, Roohi, Ehsan
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866915401419456512
author Tayerani, Parisa
Mousavi, Mahmood
Pasandidehfard, Mahmoud
Roohi, Ehsan
author_facet Tayerani, Parisa
Mousavi, Mahmood
Pasandidehfard, Mahmoud
Roohi, Ehsan
contents This study investigates the role of wall wettability, characterized by the wall contact angle (WCA), in controlling cavitation dynamics and stability around a Clark Y hydrofoil. High-fidelity Large Eddy Simulations (LES) coupled with a dynamic contact angle model were employed within the OpenFOAM framework to explore WCAs ranging from hydrophilic ($0^\circ$) to superhydrophobic ($160^\circ$) under distinct cavitation numbers ($σ= 1.6$, $0.8$, and $0.4$), representing incipient, cloud, and supercavitation regimes, respectively. The results show that increasing WCA consistently promotes earlier cavitation inception, thicker cavity development, and greater flow unsteadiness. For $σ= 1.6$, higher WCAs led to smaller, detached vapor bubbles and localized pressure fluctuations. At $σ= 0.8$, superhydrophobic surfaces caused more extensive vapor structures, intensified shedding dynamics, and stronger pressure fluctuations. For $σ= 0.4$, high WCAs facilitated stable, wall-adhered cavities that suppressed re-entrant jet activity and reduced unsteady loading. These findings demonstrate that surface wettability serves as an effective passive control mechanism for tailoring cavitation behavior and optimizing flow stability in engineering applications.
format Preprint
id arxiv_https___arxiv_org_abs_2507_15135
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Wall Wettability Control of Cavitation Patterns and Stability
Tayerani, Parisa
Mousavi, Mahmood
Pasandidehfard, Mahmoud
Roohi, Ehsan
Fluid Dynamics
Mathematical Physics
This study investigates the role of wall wettability, characterized by the wall contact angle (WCA), in controlling cavitation dynamics and stability around a Clark Y hydrofoil. High-fidelity Large Eddy Simulations (LES) coupled with a dynamic contact angle model were employed within the OpenFOAM framework to explore WCAs ranging from hydrophilic ($0^\circ$) to superhydrophobic ($160^\circ$) under distinct cavitation numbers ($σ= 1.6$, $0.8$, and $0.4$), representing incipient, cloud, and supercavitation regimes, respectively. The results show that increasing WCA consistently promotes earlier cavitation inception, thicker cavity development, and greater flow unsteadiness. For $σ= 1.6$, higher WCAs led to smaller, detached vapor bubbles and localized pressure fluctuations. At $σ= 0.8$, superhydrophobic surfaces caused more extensive vapor structures, intensified shedding dynamics, and stronger pressure fluctuations. For $σ= 0.4$, high WCAs facilitated stable, wall-adhered cavities that suppressed re-entrant jet activity and reduced unsteady loading. These findings demonstrate that surface wettability serves as an effective passive control mechanism for tailoring cavitation behavior and optimizing flow stability in engineering applications.
title Wall Wettability Control of Cavitation Patterns and Stability
topic Fluid Dynamics
Mathematical Physics
url https://arxiv.org/abs/2507.15135