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Modeling transversely isotropic, viscoelastic, incompressible tissue-like materials with application in ultrasound shear wave elastography

Qiang, Bo; Brigham, John C.; Aristizabal, Sara; Greenleaf, James F.; Zhang, Xiaoming; Urban, Matthew W.

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Authors

Bo Qiang

John C. Brigham

Sara Aristizabal

James F. Greenleaf

Xiaoming Zhang

Matthew W. Urban



Abstract

In this paper, we propose a method to model the shear wave propagation in transversely isotropic, viscoelastic and incompressible media. The targeted application is ultrasound-based shear wave elastography for viscoelasticity measurements in anisotropic tissues such as the kidney and skeletal muscles. The proposed model predicts that if the viscoelastic parameters both across and along fiber directions can be characterized as a Voigt material, then the spatial phase velocity at any angle is also governed by a Voigt material model. Further, with the aid of Taylor expansions, it is shown that the spatial group velocity at any angle is close to a Voigt type for weakly attenuative materials within a certain bandwidth. The model is implemented in a finite element code by a time domain explicit integration scheme and shear wave simulations are conducted. The results of the simulations are analyzed to extract the shear wave elasticity and viscosity for both the spatial phase and group velocities. The estimated values match well with theoretical predictions. The proposed theory is further verified by an ex vivo tissue experiment measured in a porcine skeletal muscle by an ultrasound shear wave elastography method. The applicability of the Taylor expansion to analyze the spatial velocities is also discussed. We demonstrate that the approximations from the Taylor expansions are subject to errors when the viscosities across or along the fiber directions are large or the maximum frequency considered is beyond the bandwidth defined by radii of convergence of the Taylor expansions.

Citation

Qiang, B., Brigham, J. C., Aristizabal, S., Greenleaf, J. F., Zhang, X., & Urban, M. W. (2015). Modeling transversely isotropic, viscoelastic, incompressible tissue-like materials with application in ultrasound shear wave elastography. Physics in Medicine & Biology, 60(3), 1289-1306. https://doi.org/10.1088/0031-9155/60/3/1289

Journal Article Type Article
Acceptance Date Nov 20, 2014
Online Publication Date Jan 16, 2015
Publication Date Feb 7, 2015
Deposit Date May 13, 2016
Publicly Available Date Jun 4, 2018
Journal Physics in Medicine and Biology
Print ISSN 0031-9155
Electronic ISSN 1361-6560
Publisher IOP Publishing
Peer Reviewed Peer Reviewed
Volume 60
Issue 3
Pages 1289-1306
DOI https://doi.org/10.1088/0031-9155/60/3/1289
Public URL https://durham-repository.worktribe.com/output/1404616
Related Public URLs https://www.ncbi.nlm.nih.gov/pubmed/25591921

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Copyright Statement
This is an author-created, un-copyedited version of an article published in Physics in Medicine and Biology. IOP Publishing Ltd is not responsible for any errors or omissions in this version of the manuscript or any version derived from it. The Version of Record is available online at https://doi.org/10.1088/0031-9155/60/3/1289






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