DocumentCode :
68382
Title :
Design of a phased array for the generation of adaptive radiation force along a path surrounding a breast lesion for dynamic ultrasound elastography imaging
Author :
Ekeom, D. ; Henni, Anis Hadj ; Cloutier, Guy
Author_Institution :
Lab. of Biorheology & Med. Ultrasonics, Univ. of Montreal Hosp. Res. Center (CRCHUM), Montreal, QC, Canada
Volume :
60
Issue :
3
fYear :
2013
fDate :
Mar-13
Firstpage :
552
Lastpage :
561
Abstract :
This work demonstrates, with numerical simulations, the potential of an octagonal probe for the generation of radiation forces in a set of points following a path surrounding a breast lesion in the context of dynamic ultrasound elastography imaging. Because of the in-going wave adaptive focusing strategy, the proposed method is adapted to induce shear wave fronts to interact optimally with complex lesions. Transducer elements were based on 1-3 piezocomposite material. Three-dimensional simulations combining the finite element method and boundary element method with periodic boundary conditions in the elevation direction were used to predict acoustic wave radiation in a targeted region of interest. The coupling factor of the piezocomposite material and the radiated power of the transducer were optimized. The transducer´s electrical impedance was targeted to 50 Ω. The probe was simulated by assembling the designed transducer elements to build an octagonal phased-array with 256 elements on each edge (for a total of 2048 elements). The central frequency is 4.54 MHz; simulated transducer elements are able to deliver enough power and can generate the radiation force with a relatively low level of voltage excitation. Using dynamic transmitter beamforming techniques, the radiation force along a path and resulting acoustic pattern in the breast were simulated assuming a linear isotropic medium. Magnitude and orientation of the acoustic intensity (radiation force) at any point of a generation path could be controlled for the case of an example representing a heterogeneous medium with an embedded soft mechanical inclusion.
Keywords :
acoustic intensity; biological organs; biomedical transducers; biomedical ultrasonics; boundary-elements methods; composite materials; electric impedance; finite element analysis; piezoelectric materials; ultrasonic imaging; ultrasonic transducer arrays; 1-3 piezocomposite material; acoustic intensity; acoustic wave radiation; adaptive radiation force generation; boundary element method; breast lesion; coupling factor; dynamic transmitter beamforming techniques; dynamic ultrasound elastography imaging; embedded soft mechanical properties; finite element method; frequency 4.54 MHz; heterogeneous medium; in-going wave adaptive focusing strategy; linear isotropic medium; octagonal phased-array; octagonal probe potential; periodic boundary conditions; radiated power; resistance 50 ohm; shear wave; three-dimensional numerical simulations; transducer electrical impedance; transducer elements; voltage excitation; Acoustics; Arrays; Finite element methods; Force; Impedance; Materials; Transducers; Breast Neoplasms; Computer Simulation; Elasticity Imaging Techniques; Electric Impedance; Female; Humans; Lead; Titanium; Transducers; Zirconium;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2013.2596
Filename :
6470415
Link To Document :
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