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Acoustic cavitation and bubble dynamics

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Acoustic cavitation is investigated experimentally and theoretically starting with a single bubble in an acoustic field. The single bubble is trapped in an acoustic resonator and observed by high-speed imaging and acoustic measurements following its transient dynamics to a possible steady state after generation by laser light. Numerical calculations are done to explore the regions of survival for acoustically driven bubbles with respect to dissolution or growth, surface oscillations and positional stability in a standing sound field. The interior gas dynamics is explored via molecular dynamics simulations. A glance is thrown at the complex dynamics of multi-bubble systems.
Słowa kluczowe
Rocznik
Strony
609--617
Opis fizyczny
Bibliogr. 21 poz., rys.
Twórcy
autor
autor
autor
autor
  • Universität Göttingen, Drittes Physikalisches Institut, Friedrich-Hund-Platz 1, 37077 Göttingen, Germany, lb@physik3.gwdg.de
Bibliografia
  • [1] AKHATOV I., METTIN R., OHL C.-D., PARLITZ U., LAUTERBORN W., Bjerknes force threshold for stable single bubble sonoluminescence, Phys. Rev., E55, 3747–3750 (1997).
  • [2] BRENNEN C.E., Cavitation and Bubble Dynamics, Oxford University Press, Oxford 1995.
  • [3] CRUM L.A., Rectifid diffusion, Ultrasonics, 22, 215–223 (1984).
  • [4] ELLER A.I., Growth of bubbles by rectified diffusion, J. Acoust. Soc. Am., 46, 1246–1250 (1969).
  • [5] GAITAN D.F., CRUM L.A., CHURCH C.C., ROY R.A., An experimental investigation of acoustic cavitation and sonoluminescence from a single bubble, J. Acoust. Soc. Am., 91, 3166–3183 (1992).
  • [6] KELLER J.B., MIKSIS M., Bubble oscillations of large amplitude, J. Acoust. Soc. Am., 68, 628–633 (1980).
  • [7] KOCH P., Particle modelling of structure formation of acoustic cavitation bubbles interacting with a sound field [in German], PhD Thesis, University of Göttingen, 2006.
  • [8] KURZ T., KRÖNINGER D., GEISLER R., LAUTERBORN W., Optic cavitation in an ultrasonic field, Phys. Rev., E74, 066307-1–7 (2006).
  • [9] LAUTERBORN W., Cavitation by laser light [in German], Acustica, 31, 51–78 (1974).
  • [10] LAUTERBORN W., KURZ T., METTEN B., GEISLER R., SCHANZ D., Molecular dynamics approach to sonoluminescent bubbles, [in:] Theoretical and Computational Acoustics 2003, A. TOLSTOY, YU-CHIUNG TENG, E.C. SHANG [Eds.], pp. 233–243, World Scientific, New Jersey 2004.
  • [11] LAUTERBORN W., KURZ T., METTIN R., OHL C.-D., Experimental and theoretical bubble dynamics, Advances in Chemical Physics, 110, 295–380 (1999).
  • [12] LAUTERBORN W., PARLITZ U., Methods of chaos physics and their application to acoustics, J. Acoust. Soc. Am., 84, 1975–1993 (1988).
  • [13] LEIGHTON T.G., The Acoustic Bubble, Academic Press, London 1994.
  • [14] MATULA T.J., CORDRY S.M., ROY R.A., CRUM L.A., Bjerknes force and bubble levitation under single-bubble sonoluminescence conditions, J. Acoust. Soc. Am., 102, 1522–1527 (1997).
  • [15] METTEN B., Molecular dynamics simulations for sonoluminescence [in German], PhD Thesis, University of Göttingen, 2000.
  • [16] METTIN R., Bubble structures in acoustic cavitation, [in:] Bubble and particle dynamics in acoustic fields: Modern trends and applications, A. DOINIKOV [Ed.], pp. 1–36, Research Signpost, Kerala, India, 2005.
  • [17] METTIN R., LUTHER S., OHL C.-D., LAUTERBORN W., Acoustic cavitation structures and simulations by a particle model, Ultrasonics Sonochemistry, 6, 25–29 (1999).
  • [18] PARLITZ U., ENGLISCH V., SCHEFFCZYK C.,LAUTERBORN W., Bifurcation structure of bubble oscillators, J. Acoust. Soc. Am., 88, 1061–1077 (1990).
  • [19] PARLITZ U., METTIN R., LUTHER S., AKHATOV I., VOSS M., LAUTERBORN W., Spatiotemporal dynamics of acoustic cavitation bubble clouds, Phil. Trans. R. Soc. Lond., A357, 313–334 (1999).
  • [20] SCHEFFCZYK C., PARLITZ U., KURZ T., KNOP W., LAUTERBORN W., Comparison of bifurcation structures of driven dissipative nonlinear oscillators, Phys. Rev., A43, 6495–6502 (1991).
  • [21] VUONG V.Q., SZERI A.J., YOUNG D.A., Shock formation within sonoluminescing bubbles, Phys. Fluids, 11, 10–17 (1999).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BAT8-0014-0025
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