Multiphase fluid-solid coupled analysis of shock-bubble-stone interaction in shockwave lithotripsy

被引:18
作者
Wang, Kevin G. [1 ]
机构
[1] Virginia Tech, Dept Aerosp & Ocean Engn, Blacksburg, VA 24061 USA
关键词
cavitation; embedded boundary method; FIVER; fluid-solid interaction; multiphase flow; shock-induced fracture; shockwave lithotripsy; KIDNEY-STONES; INDUCED COLLAPSE; CAVITATION; COMPUTATION; ALGORITHMS; SIMULATION; DYNAMICS; FRACTURE; ROBUST; MODEL;
D O I
10.1002/cnm.2855
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A novel multiphase fluid-solid-coupled computational framework is applied to investigate the interaction of a kidney stone immersed in liquid with a lithotripsy shock wave (LSW) and a gas bubble near the stone. The main objective is to elucidate the effects of a bubble in the shock path to the elastic and fracture behaviors of the stone. The computational framework couples a finite volume 2-phase computational fluid dynamics solver with a finite element computational solid dynamics solver. The surface of the stone is represented as a dynamic embedded boundary in the computational fluid dynamics solver. The evolution of the bubble surface is captured by solving the level set equation. The interface conditions at the surfaces of the stone and the bubble are enforced through the construction and solution of local fluid-solid and 2-fluid Riemann problems. This computational framework is first verified for 3 example problems including a 1D multimaterial Riemann problem, a 3D shock-stone interaction problem, and a 3D shock-bubble interaction problem. Next, a series of shock-bubble-stone-coupled simulations are presented. This study suggests that the dynamic response of a bubble to LSW varies dramatically depending on its initial size. Bubbles with an initial radius smaller than a threshold collapse within 1s after the passage of LSW, whereas larger bubbles do not. For a typical LSW generated by an electrohydraulic lithotripter (p(max)=35.0MPa, p(min)=-10.1MPa), this threshold is approximately 0.12mm. Moreover, this study suggests that a noncollapsing bubble imposes a negative effect on stone fracture as it shields part of the LSW from the stone. On the other hand, a collapsing bubble may promote fracture on the proximal surface of the stone, yet hinder fracture from stone interior.
引用
收藏
页数:19
相关论文
共 47 条
  • [1] [Anonymous], 2005, REPORT MANAGEMENT ST
  • [2] [Anonymous], 2012, DYNAMIC FAILURE COMP
  • [3] A ROBUST FRONT TRACKING METHOD: VERIFICATION AND APPLICATION TO SIMULATION OF THE PRIMARY BREAKUP OF A LIQUID JET
    Bo, Wurigen
    Liu, Xingtao
    Glimm, James
    Li, Xiaolin
    [J]. SIAM JOURNAL ON SCIENTIFIC COMPUTING, 2011, 33 (04) : 1505 - 1524
  • [4] Dynamics of bubbles near a rigid surface subjected to a lithotripter shock wave. Part 2. Reflected shock intensifies non-spherical cavitation collapse
    Calvisi, M. L.
    Iloreta, J. I.
    Szeri, A. J.
    [J]. JOURNAL OF FLUID MECHANICS, 2008, 616 : 63 - 97
  • [5] Modeling elastic wave propagation in kidney stones with application to shock wave lithotripsy
    Cleveland, RO
    Sapozhnikov, OA
    [J]. JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2005, 118 (04) : 2667 - 2676
  • [6] Cleveland RO, SMITHS TXB ENDOUROLO, P317
  • [7] Cole R.H., 1948, Underwater Explosions
  • [8] Shock-induced collapse of a bubble inside a deformable vessel
    Coralic, Vedran
    Colonius, Tim
    [J]. EUROPEAN JOURNAL OF MECHANICS B-FLUIDS, 2013, 40 : 64 - 74
  • [9] A simple method for fabricating artificial kidney stones of different physical properties
    Esch, Eric
    Simmons, Walter Neal
    Sankin, Georgy
    Cocks, Hadley F.
    Preminger, Glenn M.
    Zhong, Pei
    [J]. UROLOGICAL RESEARCH, 2010, 38 (04): : 315 - 319
  • [10] Dynamic implosion of underwater cylindrical shells: Experiments and Computations
    Farhat, C.
    Wang, K. G.
    Main, A.
    Kyriakides, S.
    Lee, L. -H.
    Ravi-Chandar, K.
    Belytschko, T.
    [J]. INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2013, 50 (19) : 2943 - 2961