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Interaction of lithotripter shockwaves with single inertial cavitation bubbles.

Publication ,  Journal Article
Klaseboer, E; Fong, SW; Turangan, CK; Khoo, BC; Szeri, AJ; Calvisi, ML; Sankin, GN; Zhong, P
Published in: J Fluid Mech
2007

The dynamic interaction of a shockwave (modelled as a pressure pulse) with an initially spherically oscillating bubble is investigated. Upon the shockwave impact, the bubble deforms non-spherically and the flow field surrounding the bubble is determined with potential flow theory using the boundary-element method (BEM). The primary advantage of this method is its computational efficiency. The simulation process is repeated until the two opposite sides of the bubble surface collide with each other (i.e. the formation of a jet along the shockwave propagation direction). The collapse time of the bubble, its shape and the velocity of the jet are calculated. Moreover, the impact pressure is estimated based on water-hammer pressure theory. The Kelvin impulse, kinetic energy and bubble displacement (all at the moment of jet impact) are also determined. Overall, the simulated results compare favourably with experimental observations of lithotripter shockwave interaction with single bubbles (using laser-induced bubbles at various oscillation stages). The simulations confirm the experimental observation that the most intense collapse, with the highest jet velocity and impact pressure, occurs for bubbles with intermediate size during the contraction phase when the collapse time of the bubble is approximately equal to the compressive pulse duration of the shock wave. Under this condition, the maximum amount of energy of the incident shockwave is transferred to the collapsing bubble. Further, the effect of the bubble contents (ideal gas with different initial pressures) and the initial conditions of the bubble (initially oscillating vs. non-oscillating) on the dynamics of the shockwave-bubble interaction are discussed.

Duke Scholars

Published In

J Fluid Mech

DOI

ISSN

0022-1120

Publication Date

2007

Volume

593

Start / End Page

33 / 56

Location

England

Related Subject Headings

  • Fluids & Plasmas
  • 49 Mathematical sciences
  • 40 Engineering
  • 09 Engineering
  • 01 Mathematical Sciences
 

Citation

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MLA
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Klaseboer, E., Fong, S. W., Turangan, C. K., Khoo, B. C., Szeri, A. J., Calvisi, M. L., … Zhong, P. (2007). Interaction of lithotripter shockwaves with single inertial cavitation bubbles. J Fluid Mech, 593, 33–56. https://doi.org/10.1017/S002211200700852X
Klaseboer, Evert, Siew Wan Fong, Cary K. Turangan, Boo Cheong Khoo, Andrew J. Szeri, Michael L. Calvisi, Georgy N. Sankin, and Pei Zhong. “Interaction of lithotripter shockwaves with single inertial cavitation bubbles.J Fluid Mech 593 (2007): 33–56. https://doi.org/10.1017/S002211200700852X.
Klaseboer E, Fong SW, Turangan CK, Khoo BC, Szeri AJ, Calvisi ML, et al. Interaction of lithotripter shockwaves with single inertial cavitation bubbles. J Fluid Mech. 2007;593:33–56.
Klaseboer, Evert, et al. “Interaction of lithotripter shockwaves with single inertial cavitation bubbles.J Fluid Mech, vol. 593, 2007, pp. 33–56. Pubmed, doi:10.1017/S002211200700852X.
Klaseboer E, Fong SW, Turangan CK, Khoo BC, Szeri AJ, Calvisi ML, Sankin GN, Zhong P. Interaction of lithotripter shockwaves with single inertial cavitation bubbles. J Fluid Mech. 2007;593:33–56.
Journal cover image

Published In

J Fluid Mech

DOI

ISSN

0022-1120

Publication Date

2007

Volume

593

Start / End Page

33 / 56

Location

England

Related Subject Headings

  • Fluids & Plasmas
  • 49 Mathematical sciences
  • 40 Engineering
  • 09 Engineering
  • 01 Mathematical Sciences