Literature DB >> 30522301

Energy shielding by cavitation bubble clouds in burst wave lithotripsy.

Kazuki Maeda1, Adam D Maxwell2, Tim Colonius1, Wayne Kreider2, Michael R Bailey2.   

Abstract

Combined laboratory experiment and numerical simulation are conducted on bubble clouds nucleated on the surface of a model kidney stone to quantify the energy shielding of the stone caused by cavitation during burst wave lithotripsy (BWL). In the experiment, the bubble clouds are visualized and bubble-scattered acoustics are measured. In the simulation, a compressible, multi-component flow solver is used to capture complex interactions among cavitation bubbles, the stone, and the burst wave. Quantitative agreement is confirmed between results of the experiment and the simulation. In the simulation, a significant shielding of incident wave energy by the bubble clouds is quantified. The magnitude of shielding can reach up to 90% of the energy of the incoming burst wave that otherwise would be transmitted into the stone, suggesting a potential loss of efficacy of stone comminution. There is a strong correlation between the magnitude of the energy shielding and the amplitude of the bubble-scattered acoustics, independent of the initial size and the void fraction of the bubble cloud within a range addressed in the simulation. This correlation could provide for real-time monitoring of cavitation activity in BWL.

Mesh:

Year:  2018        PMID: 30522301      PMCID: PMC6258362          DOI: 10.1121/1.5079641

Source DB:  PubMed          Journal:  J Acoust Soc Am        ISSN: 0001-4966            Impact factor:   1.840


  28 in total

1.  Cavitation bubble cluster activity in the breakage of kidney stones by lithotripter shockwaves.

Authors:  Yuriy A Pishchalnikov; Oleg A Sapozhnikov; Michael R Bailey; James C Williams; Robin O Cleveland; Tim Colonius; Lawrence A Crum; Andrew P Evan; James A McAteer
Journal:  J Endourol       Date:  2003-09       Impact factor: 2.942

2.  Ultrasound-Induced Bubble Clusters in Tissue-Mimicking Agar Phantoms.

Authors:  Pooya Movahed; Wayne Kreider; Adam D Maxwell; Barbrina Dunmire; Jonathan B Freund
Journal:  Ultrasound Med Biol       Date:  2017-07-22       Impact factor: 2.998

Review 3.  Cavitation microjets as a contributory mechanism for renal calculi disintegration in ESWL.

Authors:  L A Crum
Journal:  J Urol       Date:  1988-12       Impact factor: 7.450

Review 4.  Overview of therapeutic ultrasound applications and safety considerations.

Authors:  Douglas L Miller; Nadine B Smith; Michael R Bailey; Gregory J Czarnota; Kullervo Hynynen; Inder Raj S Makin
Journal:  J Ultrasound Med       Date:  2012-04       Impact factor: 2.153

5.  Stones: Bursting through limitations of SWL.

Authors:  Clemens Thoma
Journal:  Nat Rev Urol       Date:  2014-08-26       Impact factor: 14.432

6.  Finite-volume WENO scheme for viscous compressible multicomponent flows.

Authors:  Vedran Coralic; Tim Colonius
Journal:  J Comput Phys       Date:  2014-10-01       Impact factor: 3.553

Review 7.  Shock wave lithotripsy: advances in technology and technique.

Authors:  James E Lingeman; James A McAteer; Ehud Gnessin; Andrew P Evan
Journal:  Nat Rev Urol       Date:  2009-12       Impact factor: 14.432

8.  Numerical simulations of non-spherical bubble collapse.

Authors:  Eric Johnsen; Tim Colonius
Journal:  J Fluid Mech       Date:  2009-06-01       Impact factor: 3.627

9.  Kidney damage and renal functional changes are minimized by waveform control that suppresses cavitation in shock wave lithotripsy.

Authors:  Andrew P Evan; Lynn R Willis; James A McAteer; Michael R Bailey; Bret A Connors; Youzhi Shao; James E Lingeman; James C Williams; Naomi S Fineberg; Lawrence A Crum
Journal:  J Urol       Date:  2002-10       Impact factor: 7.450

10.  Potential for cavitation-mediated tissue damage in shockwave lithotripsy.

Authors:  Brian R Matlaga; James A McAteer; Bret A Connors; Rajash K Handa; Andrew P Evan; James C Williams; James E Lingeman; Lynn R Willis
Journal:  J Endourol       Date:  2008-01       Impact factor: 2.942

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  5 in total

1.  An investigation of elastic waves producing stone fracture in burst wave lithotripsy.

Authors:  Adam D Maxwell; Brian MacConaghy; Michael R Bailey; Oleg A Sapozhnikov
Journal:  J Acoust Soc Am       Date:  2020-03       Impact factor: 1.840

2.  Impact of stone characteristics on cavitation in burst wave lithotripsy.

Authors:  C Hunter; B Cunitz; B Dunmire; M Bailey; A Randad; W Kreider; A D Maxwell; M D Sorensen; J C Williams
Journal:  Proc Meet Acoust       Date:  2018-12-26

3.  Modeling and numerical simulation of the bubble cloud dynamics in an ultrasound field for burst wave lithotripsy.

Authors:  Kazuki Maeda; Tim Colonius; Adam Maxwell; Wayne Kreider; Michael Bailey
Journal:  Proc Meet Acoust       Date:  2018-12-26

4.  Factors Affecting Tissue Cavitation during Burst Wave Lithotripsy.

Authors:  Adam D Maxwell; Christopher Hunter; Bryan W Cunitz; Wayne Kreider; Stephanie Totten; Yak-Nam Wang
Journal:  Ultrasound Med Biol       Date:  2021-05-31       Impact factor: 3.694

Review 5.  Burst wave lithotripsy and acoustic manipulation of stones.

Authors:  Tony T Chen; Patrick C Samson; Mathew D Sorensen; Michael R Bailey
Journal:  Curr Opin Urol       Date:  2020-03       Impact factor: 2.808

  5 in total

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