DocumentCode
2354235
Title
P2A-4 A Non-Linear Model Coupling the Ultrasound PulseEcho Procedure and Contrast Agent Excitation and Backscatter: Validation Studies in Water
Author
Liu, L.L. ; Zheng, Hairong ; Shandas, R.
Author_Institution
Dept. of Mech. Eng., Colorado Univ., Boulder, CO
fYear
2006
fDate
2-6 Oct. 2006
Firstpage
1556
Lastpage
1559
Abstract
By employing microbubbles to enhance ultrasound backscatter, we have recently developed a technique, termed echo particle image velocimetry (Echo PIV), to perform accurate measurements of velocity profiles, multiple velocity vectors and local shear stress in arteries. Maximizing bubble detectability from the surrounding environment is a key issue for Echo PIV, and significant optimization of all aspects from transducer design to bubble characteristics to backscatter signal processing is required for continued improvement of this technique. We present here a numerical model coupling the time-domain FEA simulation of a 1D ultrasonic transducer array and non-linear ultrasound propagation in water with the solution for non-linear equations describing backscatter from bubble populations with varying size distributions to simulate the ultrasound pulse-echo procedure and contrast agent excitation. Experimental validation for the FEA models of the transducer array and wave propagation in water was performed according to industry standards. The backscatter from micron- and sub-micron bubble populations (size range: 0.5-5 microns) was simulated by a previously-validated size-integration (SI) method. The coupled model also showed greater ability of the triangular wave to excite subharmonic and ultraharmonic frequency content in bubbles, while minimizing the possibility of bubble rupture. It should be useful as an efficient tool for array transducer simulations in the context of contrast imaging
Keywords
biomedical ultrasonics; bubbles; finite element analysis; ultrasonic imaging; ultrasonic propagation; ultrasonic scattering; ultrasonic transducer arrays; underwater sound; 0.5 to 5 micron; 1D ultrasonic transducer array; Echo PIV; array transducer simulations; arterial multiple velocity vectors; arterial velocity profile; backscatter signal processing; bubble characteristics; bubble detectability; bubble population backscatter; bubble rupture; bubble subharmonic frequency content; bubble ultraharmonic frequency content; contrast agent backscatter; contrast agent excitation; contrast imaging; echo particle image velocimetry; local arterial shear stress; microbubbles; nonlinear model; nonlinear ultrasound water propagation; size integration method; time-domain FEA simulation; transducer design; triangular wave excitation; ultrasound backscatter enhancement; ultrasound pulse-echo procedure; Backscatter; Field emitter arrays; Particle measurements; Performance evaluation; Stress measurement; Ultrasonic imaging; Ultrasonic transducer arrays; Ultrasonic transducers; Ultrasonic variables measurement; Velocity measurement;
fLanguage
English
Publisher
ieee
Conference_Titel
Ultrasonics Symposium, 2006. IEEE
Conference_Location
Vancouver, BC
ISSN
1051-0117
Print_ISBN
1-4244-0201-8
Electronic_ISBN
1051-0117
Type
conf
DOI
10.1109/ULTSYM.2006.395
Filename
4152251
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