DocumentCode :
107610
Title :
Microbubble oscillations in capillary tubes
Author :
Thomas, D.H. ; Sboros, V. ; Emmer, M. ; Vos, H. ; De Jong, N.
Author_Institution :
Dept. of Med. Phys. & Med. Eng., Univ. of Edinburgh, Edinburgh, UK
Volume :
60
Issue :
1
fYear :
2013
fDate :
Jan-13
Abstract :
In diagnostic medicine, microbubbles are used as contrast agents to image blood flow and perfusion in large and small vessels. The small vessels (the capillaries) have diameters from a few hundred micrometers down to less than 10 μm. The effect of such microvessels surrounding the oscillating microbubbles is currently unknown, and is important for increased sensitivity in contrast diagnostics and manipulation of microbubbles for localized drug release. Here, oscillations of microbubbles in tubes with inner diameters of 25 μm and 160 μm are investigated using an ultra-high-speed camera at frame rates of ~12 million frames/s. A reduction of up to 50% in the amplitude of oscillation was observed for microbubbles in the smaller 25-μm tube, compared with those in a 160-μm tube. In the 25-μm tube, at 50 kPa, a 48% increase of microbubbles that did not oscillate above the noise level of the system was observed, indicating increased oscillation damping. No difference was observed between the resonance frequency curves calculated for microbubbles in 25-μm and 160-μm tubes. Although previous investigators have shown the effect of microvessels on microbubble oscillation at high ultrasound pressures, the present study provides the first optical images of low-amplitude microbubble oscillations in small tubes.
Keywords :
biomedical optical imaging; biomedical ultrasonics; blood vessels; bubbles; capillarity; damping; drug delivery systems; haemodynamics; haemorheology; blood vessels; capillary tubes; diagnostic medicine; image blood flow; localized drug release; low-amplitude microbubble oscillations; microbubble manipulation; microvessels; noise level; optical images; oscillation damping; perfusion; size 160 mum; size 25 mum; ultrahigh-speed camera; Acoustics; Biomedical imaging; Electron tubes; Optical imaging; Oscillators; Ultrasonic imaging; Contrast Media; Microbubbles; Models, Theoretical; Ultrasonics;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2013.2542
Filename :
6396491
Link To Document :
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