Noninvasive measurement of the hydrostatic pressure in a fluid-filled cavity based on the disappearance time of micrometer-sized free gas bubbles

被引:82
作者
Bouakaz, A
Frinking, PJA
de Jong, N
Bom, N
机构
[1] Erasmus Univ, Thoraxctr, Dept Cardiol & Expt Echocardiog, NL-3000 DR Rotterdam, Netherlands
[2] Interuniv Cardiol Inst Netherlands, Utrecht, Netherlands
关键词
noninvasive; hydrostatic pressure; ultrasound; contrast agent; free gas bubbles;
D O I
10.1016/S0301-5629(99)00109-X
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
A new method for noninvasive pressure measurement, based on the disappearance time of micrometer-sized free gas bubbles, is described in this article. An ultrasound (US) contrast agent, consisting of encapsulated gas bubbles, is used as a vehicle to transport the free gas bubbles to the desired region where the pressure is to be measured. The small free gas bubbles are generated at the region of interest (e.g., heart chambers), from the encapsulated gas bubbles, which rupture when they are exposed to a single low-frequency (e.g., 0.5 MHz), high acoustic amplitude US burst. The released gas bubbles persist for only a few ms and dissolve in the liquid, depending on their size, the gas, the liquid characteristics and ambient parameters such as temperature, gas concentration and pressure. A pressure-disappearance time relationship is determined using a sequence of high-frequency (e.g., 10 MHz), low acoustic amplitude US pulses. From in vitro experiments, reproducible results show a significant difference between the disappearance time of the bubbles as function of the local pressure, resulting in a quicker disappearance of the bubble for higher values of the pressure. The sensitivity of the method to small pressure changes (50 mmHg) is demonstrated. (C) 1999 World Federation for Ultrasound in Medicine & Biology.
引用
收藏
页码:1407 / 1415
页数:9
相关论文
共 23 条
[1]   EFFECT OF STENOSIS GEOMETRY ON THE DOPPLER-CATHETER GRADIENT RELATION INVITRO - A MANIFESTATION OF PRESSURE RECOVERY [J].
BAUMGARTNER, H ;
SCHIMA, H ;
TULZER, G ;
KUHN, P .
JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 1993, 21 (04) :1018-1025
[2]  
BING R, 1991, J FLUID MECH, V224, P91
[3]   On the effect of lung filtering and cardiac pressure on the standard properties of ultrasound contrast agent [J].
Bouakaz, A ;
de Jong, N ;
Cachard, C ;
Jouini, K .
ULTRASONICS, 1998, 36 (1-5) :703-708
[4]  
BURTON C, 1972, PHYSL BIOPHYSICS CIR
[5]   New ultrasound contrast agents and technological innovations [J].
deJong, N ;
TenCate, FJ .
ULTRASONICS, 1996, 34 (2-5) :587-590
[6]   PRINCIPLES AND RECENT DEVELOPMENTS IN ULTRASOUND CONTRAST AGENTS [J].
DEJONG, N ;
TENCATE, FJ ;
LANCEE, CT ;
ROELANDT, JRTC ;
BOM, N .
ULTRASONICS, 1991, 29 (04) :324-330
[7]  
DEJONG N, 1993, ULTRASOUND MED BIOL, V19, P179
[8]   ON THE STABILITY OF GAS BUBBLES IN LIQUID-GAS SOLUTIONS [J].
EPSTEIN, PS ;
PLESSET, MS .
JOURNAL OF CHEMICAL PHYSICS, 1950, 18 (11) :1505-1509
[9]   NEW NONINVASIVE TECHNIQUE FOR CARDIAC PRESSURE MEASUREMENT - RESONANT SCATTERING OF ULTRASOUND FROM BUBBLES [J].
FAIRBANK, WM ;
SCULLY, MO .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1977, 24 (02) :107-110
[10]   Scattering properties of encapsulated gas bubbles at high ultrasound pressures [J].
Frinking, PJA ;
de Jong, N ;
Céspedes, EI .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1999, 105 (03) :1989-1996