Published November 2006 | Version public
Conference Paper

Numerical Study of the Collapse of a Bubble Subjected to a Lithotripter Pulse

  • 1. ROR icon California Institute of Technology

Abstract

In shock wave lithotripsy, the combined effect of focused shock waves and cavitation pulverizes kidney stones. Although cavitation has been shown to play an important role in the stone comminution process, the underlying mechanism has yet to be fully understood. The goal of the present study is to quantify the potential damage caused by the collapse of a single bubble near a solid surface. Using a high‐order accurate quasiconservative, shock‐ and interface‐capturing scheme [E. Johnsen and T. Colonius, J. Comput. Phys., in press (2006)], the response of an air bubble subjected to a lithotripter pulse is considered. In particular, quantities important in cavitation erosion, such as wall stresses and reentrant jet velocity, are measured as functions of the properties of the pulse (amplitude, wavelength) and the geometry of the problem (stand‐off distance from the wall, presence of neighboring bubbles). Preliminary two‐dimensional results for a ''cylindrical bubble'' show that a large water‐hammer pressure is measured along the wall. This pressure increases for smaller stand‐off distances and longer wavelengths. Further results for spherical bubbles will be presented at the meeting.

Additional Information

© 2006 Acoustical Society of America. Published Online: 24 October 2006. This work was supported by NIH Grant PO1 DK043881.

Additional details

Identifiers

Eprint ID
97280
Resolver ID
CaltechAUTHORS:20190718-165128473

Funding

NIH
PO1 DK043881

Dates

Created
2019-07-26
Created from EPrint's datestamp field
Updated
2021-11-16
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