DocumentCode :
1953383
Title :
Design of a phased-array for radiation force generation following a closed path
Author :
Ekeom, Didace ; Henni, Anis Hadj ; Cloutier, Guy
Author_Institution :
Univ. of Montreal Hosp. Res. Center, Montreal, QC, Canada
fYear :
2010
fDate :
11-14 Oct. 2010
Firstpage :
662
Lastpage :
665
Abstract :
This work demonstrates with numerical simulations, the feasibility of an ultrasound probe for the generation of radiation forces in set of points following a path surrounding a tumor. Such strategy is adapted to induce resonance elastography of breast tumors and/or to increase displacement magnitudes induced by low frequency shear waves. Transducer elements were based on 1-3 piezocomposite material. 3D 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 the breast. The crosstalk between neighbor elements was not taken into account. The coupling factor of the piezocomposite material and the radiated power of the transducer were optimized. The transducer electrical impedance was targeted to 50 Ω. The final probe was simulated by assembling the designed transducer to build an octagonal phased-array, with 256 elements on each edge. Using dynamic transmitter beamforming techniques, the electrical excitation that generates the radiation force along a path and resulting acoustic pattern in the breast were evaluated. Transducers central frequency was 4.5 MHz; they were able to deliver enough power and could generate the radiation force with a relatively low level of voltage excitation. Magnitude and orientation of the acoustic intensity (radiation force) at any point of a path were controlled.
Keywords :
biomedical materials; biomedical transducers; biomedical ultrasonics; boundary-elements methods; cancer; finite element analysis; gynaecology; piezoelectric materials; tumours; ultrasonic transducers; 3D simulations; acoustic intensity; acoustic wave radiation; boundary element method; breast; breast tumors; coupling factor; displacement magnitudes; dynamic transmitter beamforming techniques; electrical excitation; finite element method; low-frequency shear waves; numerical simulations; octagonal phased-array; periodic boundary conditions; piezocomposite material; radiation force generation; resonance elastography; transducer electrical impedance; ultrasound probe; voltage excitation; Acoustics; Finite element methods; Force; Impedance; Transducers; Tumors; Ultrasonic imaging; Dynamic elastography; transducer design and simulation; ultrasound radiation force;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ultrasonics Symposium (IUS), 2010 IEEE
Conference_Location :
San Diego, CA
ISSN :
1948-5719
Print_ISBN :
978-1-4577-0382-9
Type :
conf
DOI :
10.1109/ULTSYM.2010.5935537
Filename :
5935537
Link To Document :
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