Literature DB >> 16266186

Modeling elastic wave propagation in kidney stones with application to shock wave lithotripsy.

Robin O Cleveland1, Oleg A Sapozhnikov.   

Abstract

A time-domain finite-difference solution to the equations of linear elasticity was used to model the propagation of lithotripsy waves in kidney stones. The model was used to determine the loading on the stone (principal stresses and strains and maximum shear stresses and strains) due to the impact of lithotripsy shock waves. The simulations show that the peak loading induced in kidney stones is generated by constructive interference from shear waves launched from the outer edge of the stone with other waves in the stone. Notably the shear wave induced loads were significantly larger than the loads generated by the classic Hopkinson or spall effect. For simulations where the diameter of the focal spot of the lithotripter was smaller than that of the stone the loading decreased by more than 50%. The constructive interference was also sensitive to shock rise time and it was found that the peak tensile stress reduced by 30% as rise time increased from 25 to 150 ns. These results demonstrate that shear waves likely play a critical role in stone comminution and that lithotripters with large focal widths and short rise times should be effective at generating high stresses inside kidney stones.

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Year:  2005        PMID: 16266186     DOI: 10.1121/1.2032187

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


  46 in total

1.  Reduction of bubble cavitation by modifying the diffraction wave from a lithotripter aperture.

Authors:  Yufeng Zhou
Journal:  J Endourol       Date:  2012-03-26       Impact factor: 2.942

2.  Effect of lithotripter focal width on stone comminution in shock wave lithotripsy.

Authors:  Jun Qin; W Neal Simmons; Georgy Sankin; Pei Zhong
Journal:  J Acoust Soc Am       Date:  2010-04       Impact factor: 1.840

3.  Why stones break better at slow shockwave rates than at fast rates: in vitro study with a research electrohydraulic lithotripter.

Authors:  Yuri A Pishchalnikov; James A McAteer; James C Williams; Irina V Pishchalnikova; R Jason Vonderhaar
Journal:  J Endourol       Date:  2006-08       Impact factor: 2.942

Review 4.  The acute and long-term adverse effects of shock wave lithotripsy.

Authors:  James A McAteer; Andrew P Evan
Journal:  Semin Nephrol       Date:  2008-03       Impact factor: 5.299

5.  Beamwidth measurement of individual lithotripter shock waves.

Authors:  Wayne Kreider; Michael R Bailey; Jeffrey A Ketterling
Journal:  J Acoust Soc Am       Date:  2009-02       Impact factor: 1.840

6.  Interaction of lithotripter shockwaves with single inertial cavitation bubbles.

Authors:  Evert Klaseboer; Siew Wan Fong; Cary K Turangan; Boo Cheong Khoo; Andrew J Szeri; Michael L Calvisi; Georgy N Sankin; Pei Zhong
Journal:  J Fluid Mech       Date:  2007       Impact factor: 3.627

7.  Experimentally validated multiphysics computational model of focusing and shock wave formation in an electromagnetic lithotripter.

Authors:  Daniel E Fovargue; Sorin Mitran; Nathan B Smith; Georgy N Sankin; Walter N Simmons; Pei Zhong
Journal:  J Acoust Soc Am       Date:  2013-08       Impact factor: 1.840

8.  A heuristic model of stone comminution in shock wave lithotripsy.

Authors:  Nathan B Smith; Pei Zhong
Journal:  J Acoust Soc Am       Date:  2013-08       Impact factor: 1.840

9.  Evaluation of the LithoGold LG-380 lithotripter: in vitro acoustic characterization and assessment of renal injury in the pig model.

Authors:  Yuri A Pishchalnikov; James A McAteer; James C Williams; Bret A Connors; Rajash K Handa; James E Lingeman; Andrew P Evan
Journal:  J Endourol       Date:  2013-02-06       Impact factor: 2.942

Review 10.  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

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