Cargando…

Numerical investigation of the cavitation bubble near the solid wall with a gas-entrapping hole based on a fully compressible three-phase model

The solid surface with several cavities containing gas strongly influences the bubble’s dynamical behaviors. To reveal the underlying physical mechanism of the cavitation bubble near a rigid boundary with a gas-entrapping hole, a fully compressible three-phase model, accounting for the three-phase v...

Descripción completa

Detalles Bibliográficos
Autores principales: Yin, Jianyong, Zhang, Yongxue, Qi, Xueyu, Tian, Lei, Gong, Dehong, Ma, Mingkai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10413280/
https://www.ncbi.nlm.nih.gov/pubmed/37499409
http://dx.doi.org/10.1016/j.ultsonch.2023.106531
_version_ 1785087101210984448
author Yin, Jianyong
Zhang, Yongxue
Qi, Xueyu
Tian, Lei
Gong, Dehong
Ma, Mingkai
author_facet Yin, Jianyong
Zhang, Yongxue
Qi, Xueyu
Tian, Lei
Gong, Dehong
Ma, Mingkai
author_sort Yin, Jianyong
collection PubMed
description The solid surface with several cavities containing gas strongly influences the bubble’s dynamical behaviors. To reveal the underlying physical mechanism of the cavitation bubble near a rigid boundary with a gas-entrapping hole, a fully compressible three-phase model, accounting for the three-phase volume transport equation, was implemented in OpenFOAM. The predicted bubble shape was validated with the corresponding experimental photos, and good agreement was achieved. The bubble’s primary physical features (e.g., the expanding shock wave, upward and downward liquid jet, and high-pressure region) are well reproduced, which helps understand the underlying mechanisms. The numerical results show that the solid wall with a gas-entrapping hole could affect the morphology of both the bubble and liquid jet, as well as shortens the bubble's first oscillation period in comparison to an intact rigid wall. The relationship among the prolongation factor, the standoff distance, and the relative size ratio is analyzed. It is found the prolongation factor increases as the relative size ratio decrease. As the standoff distance decreases, the gas entrapping hole plays a significant role in the oscillation period of the bubble. The current model can be further extended to reveal the microscopic mechanism of aeration avoiding cavitation damage and investigate the interaction between air bubbles and cavitation bubbles, which is of great interest to practical applications.
format Online
Article
Text
id pubmed-10413280
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-104132802023-08-11 Numerical investigation of the cavitation bubble near the solid wall with a gas-entrapping hole based on a fully compressible three-phase model Yin, Jianyong Zhang, Yongxue Qi, Xueyu Tian, Lei Gong, Dehong Ma, Mingkai Ultrason Sonochem Original Research Article The solid surface with several cavities containing gas strongly influences the bubble’s dynamical behaviors. To reveal the underlying physical mechanism of the cavitation bubble near a rigid boundary with a gas-entrapping hole, a fully compressible three-phase model, accounting for the three-phase volume transport equation, was implemented in OpenFOAM. The predicted bubble shape was validated with the corresponding experimental photos, and good agreement was achieved. The bubble’s primary physical features (e.g., the expanding shock wave, upward and downward liquid jet, and high-pressure region) are well reproduced, which helps understand the underlying mechanisms. The numerical results show that the solid wall with a gas-entrapping hole could affect the morphology of both the bubble and liquid jet, as well as shortens the bubble's first oscillation period in comparison to an intact rigid wall. The relationship among the prolongation factor, the standoff distance, and the relative size ratio is analyzed. It is found the prolongation factor increases as the relative size ratio decrease. As the standoff distance decreases, the gas entrapping hole plays a significant role in the oscillation period of the bubble. The current model can be further extended to reveal the microscopic mechanism of aeration avoiding cavitation damage and investigate the interaction between air bubbles and cavitation bubbles, which is of great interest to practical applications. Elsevier 2023-07-23 /pmc/articles/PMC10413280/ /pubmed/37499409 http://dx.doi.org/10.1016/j.ultsonch.2023.106531 Text en © 2023 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Original Research Article
Yin, Jianyong
Zhang, Yongxue
Qi, Xueyu
Tian, Lei
Gong, Dehong
Ma, Mingkai
Numerical investigation of the cavitation bubble near the solid wall with a gas-entrapping hole based on a fully compressible three-phase model
title Numerical investigation of the cavitation bubble near the solid wall with a gas-entrapping hole based on a fully compressible three-phase model
title_full Numerical investigation of the cavitation bubble near the solid wall with a gas-entrapping hole based on a fully compressible three-phase model
title_fullStr Numerical investigation of the cavitation bubble near the solid wall with a gas-entrapping hole based on a fully compressible three-phase model
title_full_unstemmed Numerical investigation of the cavitation bubble near the solid wall with a gas-entrapping hole based on a fully compressible three-phase model
title_short Numerical investigation of the cavitation bubble near the solid wall with a gas-entrapping hole based on a fully compressible three-phase model
title_sort numerical investigation of the cavitation bubble near the solid wall with a gas-entrapping hole based on a fully compressible three-phase model
topic Original Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10413280/
https://www.ncbi.nlm.nih.gov/pubmed/37499409
http://dx.doi.org/10.1016/j.ultsonch.2023.106531
work_keys_str_mv AT yinjianyong numericalinvestigationofthecavitationbubblenearthesolidwallwithagasentrappingholebasedonafullycompressiblethreephasemodel
AT zhangyongxue numericalinvestigationofthecavitationbubblenearthesolidwallwithagasentrappingholebasedonafullycompressiblethreephasemodel
AT qixueyu numericalinvestigationofthecavitationbubblenearthesolidwallwithagasentrappingholebasedonafullycompressiblethreephasemodel
AT tianlei numericalinvestigationofthecavitationbubblenearthesolidwallwithagasentrappingholebasedonafullycompressiblethreephasemodel
AT gongdehong numericalinvestigationofthecavitationbubblenearthesolidwallwithagasentrappingholebasedonafullycompressiblethreephasemodel
AT mamingkai numericalinvestigationofthecavitationbubblenearthesolidwallwithagasentrappingholebasedonafullycompressiblethreephasemodel