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Energy partitioning in laser-induced millimeter-sized spherical cavitation up to the fourth oscillation

To investigate the energy partitioning up to the fourth oscillation of a millimeter-scale spherical cavitation bubble induced by laser, we used nanosecond laser pulses to generate highly spherical cavitation bubbles and shadowgraphs to measure the radius-time curve. Using the extended Gilmore model...

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Autores principales: Wen, Haigang, Yao, Zhifeng, Zhong, Qiang, Tian, Ye, Sun, Yurong, Wang, Fujun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10457593/
https://www.ncbi.nlm.nih.gov/pubmed/37003210
http://dx.doi.org/10.1016/j.ultsonch.2023.106391
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author Wen, Haigang
Yao, Zhifeng
Zhong, Qiang
Tian, Ye
Sun, Yurong
Wang, Fujun
author_facet Wen, Haigang
Yao, Zhifeng
Zhong, Qiang
Tian, Ye
Sun, Yurong
Wang, Fujun
author_sort Wen, Haigang
collection PubMed
description To investigate the energy partitioning up to the fourth oscillation of a millimeter-scale spherical cavitation bubble induced by laser, we used nanosecond laser pulses to generate highly spherical cavitation bubbles and shadowgraphs to measure the radius-time curve. Using the extended Gilmore model and considering the continuous condensation of the vapor in the bubble, the time evolution of the bubble radius, bubble wall velocity, and pressure in the bubble is calculated till the 4th oscillation. Using Kirkwood-Bethe hypothesis, the evolution of velocity and pressure of shock wave at the optical breakdown, the first and second collapses are calculated. The shock wave energy at the breakdown and bubble collapse is directly calculated by numerical method. We found the simulated radius-time curve fits well with experimental data for the first four oscillations. The energy partition at the breakdown is the same as that in previous studies, the ratio of shock wave energy to bubble energy is about 2:1. In the first collapse and the second collapse, the ratio of shock wave energy to bubble energy is 14.54:1 and 2.81:1 respectively. In the third and fourth collapses, the ratio is less, namely than 1.5:1 and 0.42:1 respectively. The formation mechanism of the shock wave at the collapse is analyzed. The breakdown shock wave is mainly driven by the expansion of the supercritical liquid resulting from the thermalization of the energy of the free electrons in the plasma, and the collapse shock wave is mainly driven by the compressed liquid around the bubble.
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spelling pubmed-104575932023-08-27 Energy partitioning in laser-induced millimeter-sized spherical cavitation up to the fourth oscillation Wen, Haigang Yao, Zhifeng Zhong, Qiang Tian, Ye Sun, Yurong Wang, Fujun Ultrason Sonochem Original Research Article To investigate the energy partitioning up to the fourth oscillation of a millimeter-scale spherical cavitation bubble induced by laser, we used nanosecond laser pulses to generate highly spherical cavitation bubbles and shadowgraphs to measure the radius-time curve. Using the extended Gilmore model and considering the continuous condensation of the vapor in the bubble, the time evolution of the bubble radius, bubble wall velocity, and pressure in the bubble is calculated till the 4th oscillation. Using Kirkwood-Bethe hypothesis, the evolution of velocity and pressure of shock wave at the optical breakdown, the first and second collapses are calculated. The shock wave energy at the breakdown and bubble collapse is directly calculated by numerical method. We found the simulated radius-time curve fits well with experimental data for the first four oscillations. The energy partition at the breakdown is the same as that in previous studies, the ratio of shock wave energy to bubble energy is about 2:1. In the first collapse and the second collapse, the ratio of shock wave energy to bubble energy is 14.54:1 and 2.81:1 respectively. In the third and fourth collapses, the ratio is less, namely than 1.5:1 and 0.42:1 respectively. The formation mechanism of the shock wave at the collapse is analyzed. The breakdown shock wave is mainly driven by the expansion of the supercritical liquid resulting from the thermalization of the energy of the free electrons in the plasma, and the collapse shock wave is mainly driven by the compressed liquid around the bubble. Elsevier 2023-03-29 /pmc/articles/PMC10457593/ /pubmed/37003210 http://dx.doi.org/10.1016/j.ultsonch.2023.106391 Text en © 2023 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 Original Research Article
Wen, Haigang
Yao, Zhifeng
Zhong, Qiang
Tian, Ye
Sun, Yurong
Wang, Fujun
Energy partitioning in laser-induced millimeter-sized spherical cavitation up to the fourth oscillation
title Energy partitioning in laser-induced millimeter-sized spherical cavitation up to the fourth oscillation
title_full Energy partitioning in laser-induced millimeter-sized spherical cavitation up to the fourth oscillation
title_fullStr Energy partitioning in laser-induced millimeter-sized spherical cavitation up to the fourth oscillation
title_full_unstemmed Energy partitioning in laser-induced millimeter-sized spherical cavitation up to the fourth oscillation
title_short Energy partitioning in laser-induced millimeter-sized spherical cavitation up to the fourth oscillation
title_sort energy partitioning in laser-induced millimeter-sized spherical cavitation up to the fourth oscillation
topic Original Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10457593/
https://www.ncbi.nlm.nih.gov/pubmed/37003210
http://dx.doi.org/10.1016/j.ultsonch.2023.106391
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