Kidney damage in extracorporeal shock wave lithotripsy: a numerical approach for different shock profiles

被引:15
作者
Weinberg, Kerstin [1 ]
Ortiz, Michael [2 ]
机构
[1] Tech Univ Berlin, Inst Mech MS2, D-10587 Berlin, Germany
[2] CALTECH, Div Engn & Appl Sci, Pasadena, CA 91125 USA
关键词
Kidney; Soft tissue; Injury; Damage; Large deformation; Constitutive model; Cavitation; Shock wave; Finite element analysis; IN-VIVO; PHYSICAL-PROPERTIES; RENAL INJURY; PIG-KIDNEY; MECHANISMS; PRESSURE; STONES; MODEL;
D O I
10.1007/s10237-008-0135-0
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
In shock-wave lithotripsy-a medical procedure to fragment kidney stones-the patient is subjected to hypersonic waves focused at the kidney stone. Although this procedure is widely applied, the physics behind this medical treatment, in particular the question of how the injuries to the surrounding kidney tissue arise, is still under investigation. To contribute to the solution of this problem, two- and three-dimensional numerical simulations of a human kidney under shock-wave loading are presented. For this purpose a constitutive model of the bio-mechanical system kidney is introduced, which is able to map large visco-elastic deformations and, in particular, material damage. The specific phenomena of cavitation induced oscillating bubbles is modeled here as an evolution of spherical pores within the soft kidney tissue. By means of large scale finite element simulations, we study the shock-wave propagation into the kidney tissue, adapt unknown material parameters and analyze the resulting stress states. The simulations predict localized damage in the human kidney in the same regions as observed in animal experiments. Furthermore, the numerical results suggest that in first instance the pressure amplitude of the shock wave impulse (and not so much its exact time-pressure profile) is responsible for damaging the kidney tissue.
引用
收藏
页码:285 / 299
页数:15
相关论文
共 42 条
[1]  
BAILEY M, 2003, P 5 INT S CAV OS JAP
[2]  
BAILEY M, 2002, M CONS SHOCK W UNPUB
[3]  
Bailey MR, 2003, ULTRASON, P724
[4]  
Blomgren PM, 1997, ANAT REC, V249, P341, DOI 10.1002/(SICI)1097-0185(199711)249:3<341::AID-AR4>3.0.CO
[5]  
2-X
[6]  
BRENNENCE CE, 1995, OXFORD ENG SCI SERIE
[7]   Microdialysis assessment of shock wave lithotripsy-induced renal injury [J].
Brown, SA ;
Munver, R ;
Delvecchio, FC ;
Kuo, RL ;
Zhong, P ;
Preminger, GM .
UROLOGY, 2000, 56 (03) :364-368
[8]   First clinical experience with extracorporeally induced destruction of kidney stones by shock waves (Reprinted from J Urol, vol 127, pg 417-420, 1981) [J].
Chaussy, C ;
Schmiedt, E ;
Jocham, D ;
Brendel, W ;
Forssmann, B ;
Walther, V .
JOURNAL OF UROLOGY, 2002, 167 (05) :1957-1960
[9]   In vivo pressure measurements of lithotripsy shock waves in pigs [J].
Cleveland, RO ;
Lifshitz, DA ;
Connors, BA ;
Evan, AP ;
Willis, LR ;
Crum, LA .
ULTRASOUND IN MEDICINE AND BIOLOGY, 1998, 24 (02) :293-306
[10]   A REVIEW OF THE PHYSICAL-PROPERTIES AND BIOLOGICAL EFFECTS OF THE HIGH AMPLITUDE ACOUSTIC FIELDS USED IN EXTRACORPOREAL LITHOTRIPSY [J].
COLEMAN, AJ ;
SAUNDERS, JE .
ULTRASONICS, 1993, 31 (02) :75-89