Title :
Real-Time Implementation of a Dual-Mode Ultrasound Array System: In Vivo Results
Author :
Casper, Andrew J. ; Dalong Liu ; Ballard, John Robert ; Ebbini, Emad S.
Author_Institution :
Dept. of Biomed. Eng., Univ. of Minnesota, Minneapolis, MN, USA
Abstract :
A real-time dual-mode ultrasound array (DMUA) system for imaging and therapy is described. The system utilizes a concave (40-mm radius of curvature) 3.5 MHz, 32 element array, and modular multichannel transmitter/receiver. The system is capable of operating in a variety of imaging and therapy modes (on transmit) and continuous receive on all array elements even during high-power operation. A signal chain consisting of field-programmable gate arrays and graphical processing units is used to enable real time, software-defined beamforming and image formation. Imaging data, from quality assurance phantoms as well as in vivo small- and large-animal models, are presented and discussed. Corresponding images obtained using a temporally-synchronized and spatially-aligned diagnostic probe confirm the DMUA´s ability to form anatomically-correct images with sufficient contrast in an extended field of view around its geometric center. In addition, high-frame rate DMUA data also demonstrate the feasibility of detection and localization of echo changes indicative of cavitation and/or tissue boiling during high-intensity focused ultrasound exposures with 45-50 dB dynamic range. The results also show that the axial and lateral resolution of the DMUA are consistent with its fnumber and bandwidth with well-behaved speckle cell characteristics. These results point the way to a theranostic DMUA system capable of quantitative imaging of tissue property changes with high specificity to lesion formation using focused ultrasound.
Keywords :
acoustic receivers; array signal processing; biological tissues; biomedical transducers; biomedical ultrasonics; cavitation; field programmable gate arrays; graphics processing units; medical image processing; phantoms; physiological models; quality assurance; spatiotemporal phenomena; speckle; ultrasonic therapy; axial resolution; cavitation; dual-mode ultrasound array system; echo change detection; echo change localization; field-programmable gate array; frequency 3.5 MHz; graphical processing unit; high-intensity focused ultrasound exposure; image correction; image formation; in vivo large-animal model; in vivo small-animal model; lateral resolution; lesion formation; modular multichannel receiver; modular multichannel transmitter; quality assurance phantom; real-time DMUA system; signal chain; size 40 mm; software-defined beamforming; spatially-aligned diagnostic probe; speckle cell characteristics; temporally-synchronized diagnostic probe; theranostic DMUA system; therapy mode; tissue boiling; Arrays; Imaging; Lesions; Probes; Speckle; Transducers; Ultrasonic imaging; Beamforming; image-guided surgery; phased arrays; therapeutic ultrasound; ultrasound imaging; Animals; Computer Systems; Equipment Design; Equipment Failure Analysis; Feasibility Studies; Image Enhancement; Rats; Swine; Transducers; Ultrasonic Therapy; Ultrasonography;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2013.2264484