DocumentCode :
129679
Title :
Shear waves generated with magnetomotive force on an embedded sphere
Author :
Urban, Matthew ; Kinnick, Randall R. ; Mehrmohammadi, Mohammad ; Greenleaf, James
Author_Institution :
Dept. of Physiol. & Biomed. Eng., Mayo Clinic Coll. of Med., Rochester, MN, USA
fYear :
2014
fDate :
3-6 Sept. 2014
Firstpage :
723
Lastpage :
726
Abstract :
The characterization of the material properties of tissue and tissue mimicking materials has been is an important area of study to develop methods for elasticity imaging. Many methods utilize acoustic radiation force to produce shear waves and to extract elastic or viscoelastic properties of the medium by measuring the propagation of the shear waves. However, the push beam geometry used to generate the shear waves can induce motion that may cause bias for conventional processing methods. Towards the aim of characterizing a medium with a simpler excitation distribution, we propose the use of magnetomotive force on an embedded metallic sphere to generate shear waves. The shear wave motion can be compared with an analytic Green´s function for a spherical source. A gelatin phantom with an embedded steel sphere of 2 mm in diameter was placed above an electromagnet with diameter of 101.6 mm. A direct current (DC) voltage was applied for 20 ms to drag the sphere and the motion after the cessation of the excitation pulse was measured. A linear array transducer configured to perform compound plane wave imaging at a frame rate of 3.8 kHz was utilized to measure the shear wave motion. A Green´s function simulation was used to compare with the motion induced in the experimental setting. The Green´s function and the experimental results are in good agreement. Magnetomotive-generated shear waves could provide a unique tool to characterize material properties without the complications of an acoustic radiation force push beam.
Keywords :
Green´s function methods; acoustic imaging; acoustic transducers; biological tissues; biomechanics; elastic waves; elasticity; phantoms; acoustic radiation force push beam; analytic Green´s function; compound plane wave imaging; elasticity imaging; embedded metallic sphere; embedded sphere; gelatin phantom; linear array transducer; magnetomotive force; material properties; push beam geometry; shear wave propagation; shear waves; tissue mimicking materials; viscoelastic properties; Force; Green´s function methods; Magnetic field measurement; Magnetic resonance imaging; Magnetoacoustic effects; Ultrasonic imaging; Green´s function; embedded sphere; magnetomotive force; shear wave; viscoelastic;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ultrasonics Symposium (IUS), 2014 IEEE International
Conference_Location :
Chicago, IL
Type :
conf
DOI :
10.1109/ULTSYM.2014.0178
Filename :
6932137
Link To Document :
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