DocumentCode :
1532836
Title :
Quantifying viscoelasticity of gelatin phantoms by measuring impulse response using compact optical sensors [Correspondence]
Author :
Qiang, Bo ; Greenleaf, James ; Zhang, Xiaoming
Author_Institution :
Dept. of Physiol. & Biomed. Eng., Mayo Clinic Coll. of Med., Rochester, MN, USA
Volume :
57
Issue :
7
fYear :
2010
fDate :
7/1/2010 12:00:00 AM
Firstpage :
1696
Lastpage :
1700
Abstract :
Tissue elastography measures tissue mechanical properties, which contain important physiological information and help medical diagnosis. Instead of tracking shear wave propagation inside tissue as do magnetic resonance elastography and ultrasound based techniques, this study focuses on monitoring the propagation of surface Raleigh waves stimulated by short impulses. The method is noncontact, noninvasive, and low cost and has a potential for clinical applications. A customized device designed to measure surface wave propagation is constructed based on a laser displacement sensor (LDS). Experiments are carried out on two porcine skin gelatin phantoms of different concentrations. For each phantom, the phase velocities of specific frequencies are extracted using a cross-spectrum method and then the material elasticity and viscosity are found by fitting the phase velocities with the Voigt´s model. The results suggest that measuring viscoelasticity by monitoring the response to a surface impulse is an efficient method because of the richness of frequency content of impulse responses. The results are validated with a standard continuous wave (CW) method.
Keywords :
Rayleigh waves; biological tissues; biomechanics; biomedical materials; displacement measurement; elasticity; gelatin; laser applications in medicine; measurement by laser beam; optical sensors; phantoms; skin; surface waves (fluid); transient response; viscoelasticity; viscosity; compact optical sensors; gelatin phantoms; impulse response; laser displacement sensor; magnetic resonance elastography; porcine skin gelatin phantoms; shear wave propagation; surface Raleigh waves; surface wave propagation; tissue elastography; viscoelasticity; Biomedical monitoring; Elasticity; Imaging phantoms; Optical propagation; Optical sensors; Optical surface waves; Surface fitting; Surface waves; Ultrasonic variables measurement; Viscosity; Animals; Elasticity; Gelatin; Lasers; Optics and Photonics; Phantoms, Imaging; Skin Physiological Phenomena; Swine; Viscosity;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2010.1600
Filename :
5507672
Link To Document :
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