Title :
Ultrasonic flow measurement in small periodically excited capillary-phantoms
Author :
Maier, Florian ; Zagar, Bernhdrd G.
Author_Institution :
Inst. for Meas. Technol., Johannes Kepler Univ., Linz, Austria
Abstract :
In our paper we present an experimental ultrasonic measurement set-up combined with a blood flow mimicking phantom and show results. The phantom was designed and produced in our lab and is capable of simulating periodic vessel jitter, that influences the accuracy of blood flow measured in the phantoms capillary. This flow is produced by an infusion pump. The tissue simulating body is made of glycerol, water, agar-agar and aluminium oxide, the acoustic properties of which such as speed of sound (c=1540 m/s) and attenuation coefficient (approximately 1.5 dB/MHz/cm) are adapted to human tissues. The electronics is used to store the digitized signals scattered off the interrogated phantom volume. The signal processing comprises: alignment to reduce unwanted tissue motion related artefacts, filtering of stationary and non-stationary clutter components and velocity estimation to estimate magnitudes and spatial distribution of the assumed flow. Concluding, some image processing is necessary to generate a time sequence of 3D-flow data for a total simulated heartbeat period.
Keywords :
biomedical ultrasonics; blood flow measurement; blood vessels; medical image processing; phantoms; ultrasonic imaging; velocity measurement; 1540 m/s; 3D-flow data for; Al2O3; acoustic attenuation; agar-agar; alignment; blood flow mimicking phantom; clutter component filtering; glycerol; human tissues; infusion pump; medical imaging; periodic vessel jitter; phantom capillary; simulated heartbeat period; small blood vessels; time sequence; tissue motion related artefacts; tissue simulating body acoustic properties; ultrasonic flow measurement system; ultrasonic scanning systems; velocity estimation; water; Acoustic measurements; Aluminum oxide; Biological system modeling; Blood flow; Fluid flow measurement; Imaging phantoms; Jitter; Motion estimation; Ultrasonic variables measurement; Water;
Conference_Titel :
Instrumentation and Measurement Technology Conference, 2004. IMTC 04. Proceedings of the 21st IEEE
Print_ISBN :
0-7803-8248-X
DOI :
10.1109/IMTC.2004.1351365