Literature DB >> 24094454

Finite element modeling of impulsive excitation and shear wave propagation in an incompressible, transversely isotropic medium.

Ned C Rouze1, Michael H Wang, Mark L Palmeri, Kathy R Nightingale.   

Abstract

Elastic properties of materials can be measured by observing shear wave propagation following localized, impulsive excitations and relating the propagation velocity to a model of the material. However, characterization of anisotropic materials is difficult because of the number of elasticity constants in the material model and the complex dependence of propagation velocity relative to the excitation axis, material symmetries, and propagation directions. In this study, we develop a model of wave propagation following impulsive excitation in an incompressible, transversely isotropic (TI) material such as muscle. Wave motion is described in terms of three propagation modes identified by their polarization relative to the material symmetry axis and propagation direction. Phase velocities for these propagation modes are expressed in terms of five elasticity constants needed to describe a general TI material, and also in terms of three constants after the application of two constraints that hold in the limit of an incompressible material. Group propagation velocities are derived from the phase velocities to describe the propagation of wave packets away from the excitation region following localized excitation. The theoretical model is compared to the results of finite element (FE) simulations performed using a nearly incompressible material model with the five elasticity constants chosen to preserve the essential properties of the material in the incompressible limit. Propagation velocities calculated from the FE displacement data show complex structure that agrees quantitatively with the theoretical model and demonstrates the possibility of measuring all three elasticity constants needed to characterize an incompressible, TI material.
© 2013 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Acoustic Radiation Force Impulse (ARFI); Finite element modeling; Impulsive excitation; Transversely isotropic material

Mesh:

Year:  2013        PMID: 24094454      PMCID: PMC3879727          DOI: 10.1016/j.jbiomech.2013.09.008

Source DB:  PubMed          Journal:  J Biomech        ISSN: 0021-9290            Impact factor:   2.712


  15 in total

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Authors:  Shigao Chen; Mostafa Fatemi; James F Greenleaf
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7.  On the elasticity of transverse isotropic soft tissues (L).

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  24 in total

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3.  Analysis of multiple shear wave modes in a nonlinear soft solid: Experiments and finite element simulations with a tilted acoustic radiation force.

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4.  Characterization of transverse isotropy in compressed tissue-mimicking phantoms.

Authors:  Matthew W Urban; Manuela Lopera; Sara Aristizabal; Carolina Amador; Ivan Nenadic; Randall R Kinnick; Alexander D Weston; Bo Qiang; Xiaoming Zhang; James F Greenleaf
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5.  Magnetic resonance elastography of slow and fast shear waves illuminates differences in shear and tensile moduli in anisotropic tissue.

Authors:  J L Schmidt; D J Tweten; A N Benegal; C H Walker; T E Portnoi; R J Okamoto; J R Garbow; P V Bayly
Journal:  J Biomech       Date:  2016-02-15       Impact factor: 2.712

6.  Estimation of material parameters from slow and fast shear waves in an incompressible, transversely isotropic material.

Authors:  Dennis J Tweten; Ruth J Okamoto; John L Schmidt; Joel R Garbow; Philip V Bayly
Journal:  J Biomech       Date:  2015-10-09       Impact factor: 2.712

7.  Robust Phase Velocity Dispersion Estimation of Viscoelastic Materials Used for Medical Applications Based on the Multiple Signal Classification Method.

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8.  Shear wave vibrometry evaluation in transverse isotropic tissue mimicking phantoms and skeletal muscle.

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10.  Anisotropic composite material phantom to improve skeletal muscle characterization using magnetic resonance elastography.

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