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  4. Ramp-creep ultrasound viscoelastography for measuring viscoelastic parameters of materials
 
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Ramp-creep ultrasound viscoelastography for measuring viscoelastic parameters of materials

Journal
Materials
Journal Volume
13
Journal Issue
16
Date Issued
2020
Author(s)
CHE-YU LIN  
DOI
10.3390/MA13163593
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85090287933&doi=10.3390%2fMA13163593&partnerID=40&md5=06b126465bce9448f11f35bb0aa4c15f
https://scholars.lib.ntu.edu.tw/handle/123456789/577051
Abstract
Several ultrasound-based methods have been developed to evaluate the viscoelastic properties of materials. The purpose of this study is to introduce a novel viscoelastography method based on ultrasound acoustic radiation force for measuring the parameters relevant to the viscoelastic properties of materials, named ramp-creep ultrasound viscoelastography (RC viscoelastography). RC viscoelastography uses two different ultrasound excitation modes to cause ramp and creep strain responses in the material. By combining and analyzing the information obtained from these two modes of excitation, the viscoelastic parameters of the material can be quantitatively evaluated. Finite element computer simulation demonstrated that RC viscoelastography can accurately evaluate the viscoelastic parameters of the material, including the relaxation and creep time constants as well as the ratio of viscous fluids to solids in the material, except for the region near the top surface of the material. The novelty of RC viscoelastography is that there is no need to know the magnitude of acoustic radiation force and induced stress in the material in order to evaluate the viscoelastic parameters. In the future, experiments are necessary to test the performance of RC viscoelastography in real biomaterials and biological tissues. ? 2020 by the author.
Subjects
Acoustic emissions; Acoustic radiators; Acoustic wave propagation; Acoustic wave transmission; Creep; Materials properties; Ultrasonics; Acoustic radiation force; Biological tissues; Induced stress; Time constants; Ultrasound excitation; Visco-elastic parameters; Viscoelastic properties; Viscous fluids; Viscoelasticity
Type
journal article

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