INTERACTION OF LITHOTRIPTER-GENERATED SHOCK-WAVES WITH AIR BUBBLES

被引:100
作者
PHILIPP, A
DELIUS, M
SCHEFFCZYK, C
VOGEL, A
LAUTERBORN, W
机构
[1] KLINIKUM GROSSHADERN, INST CHIRURG FORSCH, W-8000 MUNICH 70, GERMANY
[2] MED LASERZENTRUM LUBECK, W-2400 LUBECK 1, GERMANY
关键词
D O I
10.1121/1.406853
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
The shock wave-induced collapse and jet formation of pre-existing air bubbles at the focus of an extracorporeal shock wave lithotripter is investigated using high-speed photography. The experimentally obtained collapse time, ranging from 1 to 9 mus for bubbles with an initial radius R0 of 0. 15 to 1. 2 mm, agrees well with numerical results obtained using the Gilmore model. The collapse time is not linearly dependent on the initial bubble diameter since the temporal profile of the lithotripter wave contains a stress wave. The bubbles, positioned below a thin plastic foil, show strong jet formation in the direction of wave propagation with peak velocities of up to 770 m/s at the moment of collapse. Bubbles of initial radii between 0.3 and 0.7 mm always induce perforation of the foil by the jet (hole diameter 80-300 mum). Averaging the jet flow speed over 5 mus immediately after the collapse results in velocities from nearly zero up to 210 m/s, depending on the initial bubble size, with a maximum at R0=550 mum. This maximum is related to the temporal profile of the shock wave and to the effective cross section of the bubble for shock wave energy transfer. As cavitation bubbles are generated in the focal region of the lithotripter, the results are discussed with respect to the processes in a cavitation bubble field, which are of importance in cavitation erosion as well as in extracorporeal shock wave lithotripsy.
引用
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页码:2496 / 2509
页数:14
相关论文
共 58 条
[21]  
DELIUS M, 1990, 12TH P ISNA FRONT NO, P31
[22]   RECTIFIED DIFFUSION DURING NONLINEAR PULSATIONS OF CAVITATION BUBBLES [J].
ELLER, A ;
FLYNN, HG .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1965, 37 (03) :493-&
[23]  
ELLIS AT, 1968, EXPT INVESTIGATION S, P1
[24]  
FRY F J, 1970, Journal of the Acoustical Society of America, V48, P1413, DOI 10.1121/1.1912301
[25]  
GIBSON DC, 1968, 3RD P AUSTR C HYDR F, P210
[26]   RADIATION-INDUCED ULTRASONIC CAVITATION [J].
GREENSPAN, M ;
TSCHIEGG, CE .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1966, 39 (06) :1236-+
[27]   THE DYNAMICS OF CAVITY CLUSTERS IN ULTRASONIC (VIBRATORY) CAVITATION EROSION [J].
HANSSON, I ;
MORCH, KA .
JOURNAL OF APPLIED PHYSICS, 1980, 51 (09) :4651-4658
[28]  
IORITANI N, 1990, CURRENT TOPICS SHOCK
[29]  
JUNGNICKEL K, 1992, COMMUNICATION
[30]  
KLEINBREUER W, 1981, OLHYDRAUL PNEUM, V25, P409