Title :
7B-3 Direct Estimation of Shear Modulus using Spatially Modulated Acoustic Radiation Force Impulses
Author :
McAleavey, Stephen ; Menon, M.
Abstract :
We present a method for estimating the shear modulus of tissue using impulsively applied acoustic radiation force with a specific spatial variation in intensity. Using one of several proposed techniques, we phase elements of a linear array to generate a lateral intensity variation of a desired spatial frequency. The temporal frequency of the shear wave generated by this spatially modulated force is directly related to the shear modulus at the pushing location. A Siemens Antares scanner was used to generate the spatially varying pushing beams and track motion in graphite/gelatin phantoms. The phantoms had shear moduli of 1.5 and 5.6kPa as measured with standard mechanical testing methods. Using spatially modulated radiation force with a wavelength of 1 mm, we estimated the gelatin phantom shear moduli to be 1.4 and 5.8 kPa, within 7% and 4% of the mechanically measured values. Simulated and experimentally measured images of induced vibration frequency and modulus in lesion phantoms are presented.
Keywords :
bioacoustics; biological tissues; biomechanics; biomedical ultrasonics; phantoms; shear modulus; ultrasonic measurement; acoustic pulse intensity spatial variation; acoustic radation force impulse; graphite-gelatin phantoms; shear modulus direct estimation; shear wave temporal frequency; spatially modulated radiation force; tissue shear modulus; Acoustic beams; Force measurement; Frequency; Imaging phantoms; Measurement standards; Mechanical variables measurement; Phased arrays; Tracking; Vibration measurement; Wavelength measurement;
Conference_Titel :
Ultrasonics Symposium, 2007. IEEE
Conference_Location :
New York, NY
Print_ISBN :
978-1-4244-1384-3
Electronic_ISBN :
1051-0117
DOI :
10.1109/ULTSYM.2007.145