A COMPARISON OF STONE DAMAGE CAUSED BY DIFFERENT MODES OF SHOCK-WAVE GENERATION

被引:0
|
作者
CHUONG, CJC
ZHONG, P
PREMINGER, GM
机构
[1] UNIV TEXAS,SW MED CTR,DIV MINERAL METAB,DALLAS,TX 75230
[2] UNIV TEXAS,JOINT BIOMED ENGN PROGRAM,ARLINGTON,TX 76019
[3] UNIV TEXAS,SW MED CTR,DIV UROL,DALLAS,TX 75230
来源
JOURNAL OF UROLOGY | 1992年 / 148卷 / 01期
关键词
LITHOTRIPSY; CALCULI;
D O I
暂无
中图分类号
R5 [内科学]; R69 [泌尿科学(泌尿生殖系疾病)];
学科分类号
1002 ; 100201 ;
摘要
A standard stone phantom was used to compare stone damage after extracorporeal shock wave administration from electrohydraulic, electromagnetic and piezoelectric lithotripters. For each machine, a low and high shock wave intensity setting was chosen: 18 & 24 kV for electrohydraulic; 16 & 19 kV for electromagnetic; power levels 1 and 4 for piezoelectric. The shock wave was focused either at the front (surface facing the wave source) or back surface of the stone and 50, 100, 200 or 400 shocks were delivered to different stone groups. Effects of varying physical properties in the stone phantom were also investigated. Stone damage was described in terms of volume loss and both depth and width of the resulting damage crater. At the lower intensity settings, all three machines produced stone volume loss which was linearly related to the number of shock delivered. At higher intensity settings, volume loss increased rapidly as the number of shocks increased. With the same number of shocks, stone volume loss was greatest with the electrohydraulic machine, followed by electromagnetic and piezoelectric lithotripters for both low and high intensity settings. Damage craters from the piezoelectric device were narrow and deep; those from the electromagnetic machine were of the shape of a right angle circular cone; whereas those from the electrohydraulic lithotripter were shallow and wide. At the high intensity settings, damage from the piezoelectric and electrohydraulic lithotripters appeared to depend upon the position of the focal point with a higher volume loss when the shock waves were targeted at the front surface of the stone. For the electromagnetic device, a higher volume loss was found when we positioned the focal point at the back surface of the stone phantom. Stone phantoms with lower mechanical strength and acoustic impedance were more easily damaged than those with higher values. Finally, a computer regression model was developed to express volume loss in terms of the intensity setting, focal position and number of shocks for each lithotripter.
引用
收藏
页码:200 / 205
页数:6
相关论文
共 50 条
  • [41] Comparison of different shock wave frequencies on stone disintegration in extracorporeal shock wave lithotripsy; 60, 80 and 100/min
    Mohamed Ahmed Mohamed El Taher
    A. Reda
    A. M. Abdel Latif
    M. A. El Gammal
    African Journal of Urology, 2021, 27
  • [42] Comparison of geometrical shock dynamics and kinematic models for shock-wave propagation
    J. Ridoux
    N. Lardjane
    L. Monasse
    F. Coulouvrat
    Shock Waves, 2018, 28 : 401 - 416
  • [43] Comparison of geometrical shock dynamics and kinematic models for shock-wave propagation
    Ridoux, J.
    Lardjane, N.
    Monasse, L.
    Coulouvrat, F.
    SHOCK WAVES, 2018, 28 (02) : 401 - 416
  • [44] SIDE-EFFECTS OF EXTRACORPOREAL SHOCK-WAVE EXPOSURE IN PATIENTS TREATED BY EXTRACORPOREAL SHOCK-WAVE LITHOTRIPSY FOR UPPER URINARY-TRACT STONE
    KISHIMOTO, T
    YAMAMOTO, K
    SUGIMOTO, T
    YOSHIHARA, H
    MAEKAWA, M
    EUROPEAN UROLOGY, 1986, 12 (05) : 308 - 313
  • [45] IS STRUCTURAL HISTOLOGICAL DAMAGE A LIMITATION FOR EXTRACORPOREAL SHOCK-WAVE LITHOTRIPSY
    MENDEZ, N
    JESSURUN, J
    MANRIQUE, JJ
    URIBE, M
    HEPATOLOGY, 1990, 12 (04) : 1018 - 1018
  • [46] ELECTROMAGNETIC SHOCK-WAVE LITHOTRIPSY OF GALLBLADDER STONES IN-VITRO - THE ROLE OF DIFFERENT STONE CHARACTERISTICS AND TREATMENT VARIABLES
    VERGUNST, H
    BRAKEL, K
    NIJS, HGT
    MATURA, E
    DREXLER, J
    STEEN, G
    SCHRODER, FH
    TERPSTRA, OT
    JOURNAL OF STONE DISEASE, 1993, 5 (02): : 105 - 112
  • [47] MODES OF SHOCK-WAVE OSCILLATIONS ON SPIKE-TIPPED BODIES.
    Calarese, Wladimiro
    Hankey, Wilbur L.
    AIAA journal, 1985, 23 (02): : 185 - 192
  • [48] HIGH-PRESSURE GENERATION BY UNDERWATER SHOCK-WAVE FOCUSING
    SAITO, K
    KAMESHIMA, N
    TAKAYAMA, K
    THEORETICAL AND APPLIED MECHANICS, VOL 38, 1989, 38 : 241 - 247
  • [49] Picosecond shock-wave generation on a GaAs nonlinear transmission line
    Madden, C.J.
    Rodwell, M.J.W.
    Marsland, R.A.
    Bloom, D.M.
    Pao, Y.C.
    IEEE Transactions on Electron Devices, 1988, 35 (12):
  • [50] Shock-wave generation during dry laser cleaning of particles
    Bregar, VB
    Mozina, J
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2003, 77 (05): : 633 - 639