Laser induced spherical bubble dynamics in partially confined geometry with acoustic feedback from container walls.

Acoustic feedback Elastic wall Extended Rayleigh-Plesset model Laser-induced cavitation Partial confinement Vibrations

Journal

Ultrasonics sonochemistry
ISSN: 1873-2828
Titre abrégé: Ultrason Sonochem
Pays: Netherlands
ID NLM: 9433356

Informations de publication

Date de publication:
29 Oct 2023
Historique:
received: 14 08 2023
revised: 09 10 2023
accepted: 26 10 2023
medline: 6 11 2023
pubmed: 6 11 2023
entrez: 6 11 2023
Statut: aheadofprint

Résumé

We investigated laser-induced cavitation dynamics in a small container with elastic thin walls and free or partially confined surface both experimentally and by numerical investigations. The cuvette was only 8-25 times larger than the bubble in its center. The liquid surface was either free, or two thirds were confined by a piston-shaped pressure transducer. Different degrees of confinement were realized by filling the liquid up to the transducer surface or to the top of the cuvette. For reference, some experiments were performed in free liquid. We recorded the bubble dynamics simultaneously by high-speed photography, acoustic measurements, and detection of probe beam scattering. Simultaneous single-shot recording of radius-time curves and oscillation times enabled to perform detailed investigations of the bubble dynamics as a function of bubble size, acoustic feedback from the elastic walls, and degree of surface confinement. The bubble dynamics was numerically simulated using a Rayleigh-Plesset model extended by terms describing the acoustically mediated feedback from the bubble's environment. Bubble oscillations were approximately spherical as long as no secondary cavitation by tensile stress occurred. Bubble expansion was always similar to the dynamics in free liquid, and the environment influenced mainly the collapse phase and subsequent oscillations. For large bubbles, strong confinement led to a slight reduction of maximum bubble size and to a pronounced reduction of the oscillation time, and both effects increased with bubble size. The joint action of breakdown-induced shock wave and bubble expansion excites cuvette wall vibrations, which produce alternating pressure waves that are focused onto the bubble. This results in a prolongation of the collapse phase and an enlargement of the second oscillation, or in time-delayed re-oscillations. The details of the bubble dynamics depend in a complex manner on the degree of surface confinement and on bubble size. Numerical simulations of the first bubble oscillation agreed well with experimental data. They suggest that the alternating rarefaction/compression waves from breakdown-induced wall vibrations cause a prolongation of the first oscillation. By contrast, liquid mass movement in the cuvette corners result in wall vibrations causing late re-oscillations. The strong and rich interaction between the bubble and its surroundings may be relevant for a variety of applications such as intraluminal laser surgery and laser-induced cavitation in microfluidics.

Identifiants

pubmed: 37931344
pii: S1350-4177(23)00376-0
doi: 10.1016/j.ultsonch.2023.106664
pmc: PMC10633529
pii:
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

106664

Informations de copyright

Copyright © 2023 The Authors. Published by Elsevier B.V. All rights reserved.

Déclaration de conflit d'intérêts

Declaration of Competing Interest The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

Références

Lab Chip. 2013 Mar 21;13(6):1144-50
pubmed: 23364762
Soft Matter. 2014 Mar 14;10(10):1455-61
pubmed: 24795983
Biomed Opt Express. 2018 Aug 30;9(9):4552-4568
pubmed: 30615704
Phys Rev Lett. 1996 Oct 14;77(16):3467-3470
pubmed: 10062227
Phys Rev Lett. 2010 Aug 13;105(7):078101
pubmed: 20868077
Phys Rev Lett. 2008 Jan 25;100(3):038102
pubmed: 18233040
Appl Opt. 1999 Jun 1;38(16):3636-43
pubmed: 18319968
Small. 2014 May 14;10(9):1746-51
pubmed: 24536017
Phys Med Biol. 1997 May;42(5):895-912
pubmed: 9172266
Opt Express. 2017 Oct 2;25(20):23690-23698
pubmed: 29041321
J Biophotonics. 2009 Oct;2(10):557-72
pubmed: 19606444
Chem Rev. 2003 Feb;103(2):577-644
pubmed: 12580643
Phys Rev Lett. 2007 Oct 12;99(15):158104
pubmed: 17995217
J Acoust Soc Am. 2009 Dec;126(6):2963-72
pubmed: 20000909
Circulation. 1993 Apr;87(4):1258-63
pubmed: 8462152
Ultrason Sonochem. 2023 Mar 29;95:106391
pubmed: 37003210
Anal Chem. 2007 Jun 15;79(12):4484-92
pubmed: 17508715
Opt Express. 2018 Oct 29;26(22):28560-28575
pubmed: 30470031
Analyst. 2013 Nov 12;138(24):7308-15
pubmed: 23844418

Auteurs

Lei Fu (L)

Institute of Biomedical Photonics and Sensing, Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi' an 710049, China; Institute of Biomedical Optics, University of Luebeck, 23562 Luebeck, Germany.

Xiao-Xuan Liang (XX)

Institute of Biomedical Optics, University of Luebeck, 23562 Luebeck, Germany.

Sijia Wang (S)

Institute of Biomedical Photonics and Sensing, Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi' an 710049, China.

Siqi Wang (S)

Zunyi Medical University, Zhuhai Campus, Zhuhai 519041, China.

Ping Wang (P)

Institute of Biomedical Photonics and Sensing, Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi' an 710049, China; State Key Laboratory of Transient Optics and Photonics, Chinese Academy of Sciences, Xi'an 710119, Shaanxi, China.

Zhenxi Zhang (Z)

Institute of Biomedical Photonics and Sensing, Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi' an 710049, China.

Jing Wang (J)

Institute of Biomedical Photonics and Sensing, Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi' an 710049, China.

Alfred Vogel (A)

Institute of Biomedical Optics, University of Luebeck, 23562 Luebeck, Germany. Electronic address: alfred.vogel@uni-luebeck.de.

Cuiping Yao (C)

Institute of Biomedical Photonics and Sensing, Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi' an 710049, China. Electronic address: zsycp@mail.xjtu.edu.cn.

Classifications MeSH