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Radial oscillation and translational motion of a gas bubble in a micro-cavity

According to classical nucleation theory, a gas nucleus can grow into a cavitation bubble when the ambient pressure is negative. Here, the growth process of a gas nucleus in a micro-cavity was simplified to two “events”, and the full confinement effect of the surrounding medium of the cavity was con...

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Autores principales: Zhang, Xianmei, Li, Fan, Wang, Chenghui, Guo, Jianzhong, Mo, Runyang, Hu, Jing, Chen, Shi, He, Jiaxin, Liu, Honghan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8866885/
https://www.ncbi.nlm.nih.gov/pubmed/35203000
http://dx.doi.org/10.1016/j.ultsonch.2022.105957
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author Zhang, Xianmei
Li, Fan
Wang, Chenghui
Guo, Jianzhong
Mo, Runyang
Hu, Jing
Chen, Shi
He, Jiaxin
Liu, Honghan
author_facet Zhang, Xianmei
Li, Fan
Wang, Chenghui
Guo, Jianzhong
Mo, Runyang
Hu, Jing
Chen, Shi
He, Jiaxin
Liu, Honghan
author_sort Zhang, Xianmei
collection PubMed
description According to classical nucleation theory, a gas nucleus can grow into a cavitation bubble when the ambient pressure is negative. Here, the growth process of a gas nucleus in a micro-cavity was simplified to two “events”, and the full confinement effect of the surrounding medium of the cavity was considered by including the bulk modulus in the equation of state. The Rayleigh–Plesset-like equation of the cavitation bubble in the cavity was derived to model the radial oscillation and translational motion of the cavitation bubble in the local acoustic field. The numerical results show that the nucleation time of the cavitation bubble is sensitive to the initial position of the gas nucleus. The cavity size affects the duration of the radial oscillation of the cavitation bubble, where the duration is shorter for smaller cavities. The equilibrium radius of a cavitation bubble grown from a gas nucleus increases with increasing size of the cavity. There are two possible types of translational motion: reciprocal motion around the center of the cavity and motion toward the cavity wall. The growth process of gas nuclei into cavitation bubbles is also dependent on the compressibility of the surrounding medium and the magnitude of the negative pressure. Therefore, gas nuclei in a liquid cavity can be excited by acoustic waves to form cavitation bubbles, and the translational motion of the cavitation bubbles can be easily observed owing to the confining influence of the medium outside the cavity.
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spelling pubmed-88668852022-03-02 Radial oscillation and translational motion of a gas bubble in a micro-cavity Zhang, Xianmei Li, Fan Wang, Chenghui Guo, Jianzhong Mo, Runyang Hu, Jing Chen, Shi He, Jiaxin Liu, Honghan Ultrason Sonochem Short Communication According to classical nucleation theory, a gas nucleus can grow into a cavitation bubble when the ambient pressure is negative. Here, the growth process of a gas nucleus in a micro-cavity was simplified to two “events”, and the full confinement effect of the surrounding medium of the cavity was considered by including the bulk modulus in the equation of state. The Rayleigh–Plesset-like equation of the cavitation bubble in the cavity was derived to model the radial oscillation and translational motion of the cavitation bubble in the local acoustic field. The numerical results show that the nucleation time of the cavitation bubble is sensitive to the initial position of the gas nucleus. The cavity size affects the duration of the radial oscillation of the cavitation bubble, where the duration is shorter for smaller cavities. The equilibrium radius of a cavitation bubble grown from a gas nucleus increases with increasing size of the cavity. There are two possible types of translational motion: reciprocal motion around the center of the cavity and motion toward the cavity wall. The growth process of gas nuclei into cavitation bubbles is also dependent on the compressibility of the surrounding medium and the magnitude of the negative pressure. Therefore, gas nuclei in a liquid cavity can be excited by acoustic waves to form cavitation bubbles, and the translational motion of the cavitation bubbles can be easily observed owing to the confining influence of the medium outside the cavity. Elsevier 2022-02-18 /pmc/articles/PMC8866885/ /pubmed/35203000 http://dx.doi.org/10.1016/j.ultsonch.2022.105957 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Short Communication
Zhang, Xianmei
Li, Fan
Wang, Chenghui
Guo, Jianzhong
Mo, Runyang
Hu, Jing
Chen, Shi
He, Jiaxin
Liu, Honghan
Radial oscillation and translational motion of a gas bubble in a micro-cavity
title Radial oscillation and translational motion of a gas bubble in a micro-cavity
title_full Radial oscillation and translational motion of a gas bubble in a micro-cavity
title_fullStr Radial oscillation and translational motion of a gas bubble in a micro-cavity
title_full_unstemmed Radial oscillation and translational motion of a gas bubble in a micro-cavity
title_short Radial oscillation and translational motion of a gas bubble in a micro-cavity
title_sort radial oscillation and translational motion of a gas bubble in a micro-cavity
topic Short Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8866885/
https://www.ncbi.nlm.nih.gov/pubmed/35203000
http://dx.doi.org/10.1016/j.ultsonch.2022.105957
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