Title :
Measure elasticity and viscosity using the out-of-plane shear wave
Author :
Heng Zhao ; Bo Qiang ; Amador, Carolina ; Pengfei Song ; Urban, Matthew ; Kinnick, Randall R. ; Greenleaf, James ; Shigao Chen
Author_Institution :
Dept. of Physiol. & Biomed. Eng, Mayo Clinic Coll. of Med., Rochester, MN, USA
Abstract :
Tissue elasticity μ1 and viscosity μ2 can be estimated by evaluating dispersion of shear wave propagation velocity over a range of frequencies. Alternatively, μ1 and μ2 can be calculated from shear wave attenuation αs and velocity cs at a single frequency. For shear waves generated by a focused ultrasound beam, attenuation due to geometric spreading makes it difficult to estimate as correctly. In this study, we use a wide unfocused beam to generate quasi-planar radiation force (minimal diffraction) and monitor the out-of-plane (elevation direction) shear wave propagation using another transducer. Frequency dependent cs and αs values are calculated from the 2D Fourier transform (k-space) of the spatiotemporal shear wave data, using peak extraction and a full-width-of-half-maximum (FWHM) method. Simulation and experiment studies show good agreement between the results using the proposed method and the theoretical or independent measurement results. With the two probes placed on one side of the target or integrated into a 2D array probe, the proposed method could be applied to study in vivo tissue viscoelastic properties.
Keywords :
Fourier transforms; acoustic wave propagation; biological tissues; biomechanics; biomedical transducers; biomedical ultrasonics; elastic waves; elasticity; ultrasonic transducers; viscoelasticity; viscosity; 2D Fourier transform; 2D array probe; FWHM method; focused ultrasound beam; frequency dependent values; full-width-half-maximum method; geometric spreading; in vivo tissue viscoelastic properties; out-of-plane shear wave propagation; peak extraction; quasiplanar radiation force; shear wave attenuation; shear wave propagation velocity; spatiotemporal shear wave data; transducer; Acoustics; Attenuation; Dispersion; Force; Mathematical model; Phantoms; Transducers; Attenuation; Elasticity and viscosity; FWHM; Out-of-plane shear wave;
Conference_Titel :
Ultrasonics Symposium (IUS), 2012 IEEE International
Conference_Location :
Dresden
Print_ISBN :
978-1-4673-4561-3
DOI :
10.1109/ULTSYM.2012.0053