Literature DB >> 26609064

A discrete spectral analysis for determining quasi-linear viscoelastic properties of biological materials.

Behzad Babaei1, Steven D Abramowitch2, Elliot L Elson3, Stavros Thomopoulos4, Guy M Genin5.   

Abstract

The viscoelastic behaviour of a biological material is central to its functioning and is an indicator of its health. The Fung quasi-linear viscoelastic (QLV) model, a standard tool for characterizing biological materials, provides excellent fits to most stress-relaxation data by imposing a simple form upon a material's temporal relaxation spectrum. However, model identification is challenging because the Fung QLV model's 'box'-shaped relaxation spectrum, predominant in biomechanics applications, can provide an excellent fit even when it is not a reasonable representation of a material's relaxation spectrum. Here, we present a robust and simple discrete approach for identifying a material's temporal relaxation spectrum from stress-relaxation data in an unbiased way. Our 'discrete QLV' (DQLV) approach identifies ranges of time constants over which the Fung QLV model's typical box spectrum provides an accurate representation of a particular material's temporal relaxation spectrum, and is effective at providing a fit to this model. The DQLV spectrum also reveals when other forms or discrete time constants are more suitable than a box spectrum. After validating the approach against idealized and noisy data, we applied the methods to analyse medial collateral ligament stress-relaxation data and identify the strengths and weaknesses of an optimal Fung QLV fit.
© 2015 The Author(s).

Entities:  

Keywords:  ligament; quasi-linear viscoelasticity; spectral analysis; stress–relaxation

Mesh:

Year:  2015        PMID: 26609064      PMCID: PMC4707847          DOI: 10.1098/rsif.2015.0707

Source DB:  PubMed          Journal:  J R Soc Interface        ISSN: 1742-5662            Impact factor:   4.118


  32 in total

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2.  An improved method to analyze the stress relaxation of ligaments following a finite ramp time based on the quasi-linear viscoelastic theory.

Authors:  Steven D Abramowitch; Savio L Woo
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Journal:  Ann Biomed Eng       Date:  2004-02       Impact factor: 3.934

4.  Methods for quasi-linear viscoelastic modeling of soft tissue: application to incremental stress-relaxation experiments.

Authors:  Joseph J Sarver; Paul S Robinson; Dawn M Elliott
Journal:  J Biomech Eng       Date:  2003-10       Impact factor: 2.097

5.  Evaluation of a new injury model to study medial collateral ligament healing: primary repair versus nonoperative treatment.

Authors:  J A Weiss; S L Woo; K J Ohland; S Horibe; P O Newton
Journal:  J Orthop Res       Date:  1991-07       Impact factor: 3.494

6.  Viscoelastic properties of the human medial collateral ligament under longitudinal, transverse and shear loading.

Authors:  Carlos Bonifasi-Lista; Spencer P Lake; Michael S Small; Jeffrey A Weiss
Journal:  J Orthop Res       Date:  2005-01       Impact factor: 3.494

7.  A rate-insensitive linear viscoelastic model for soft tissues.

Authors:  Wei Zhang; Henry Y Chen; Ghassan S Kassab
Journal:  Biomaterials       Date:  2007-05-05       Impact factor: 12.479

8.  The viscoelastic responses of the human cervical spine in torsion: experimental limitations of quasi-linear theory, and a method for reducing these effects.

Authors:  B S Myers; J H McElhaney; B J Doherty
Journal:  J Biomech       Date:  1991       Impact factor: 2.712

9.  The use of a laser micrometer system to determine the cross-sectional shape and area of ligaments: a comparative study with two existing methods.

Authors:  S L Woo; M I Danto; K J Ohland; T Q Lee; P O Newton
Journal:  J Biomech Eng       Date:  1990-11       Impact factor: 2.097

10.  Quasilinear viscoelastic behavior of bovine extraocular muscle tissue.

Authors:  Lawrence Yoo; Hansang Kim; Vijay Gupta; Joseph L Demer
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  10 in total

1.  Tissue constructs: platforms for basic research and drug discovery.

Authors:  Elliot L Elson; Guy M Genin
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2.  Discrete quasi-linear viscoelastic damping analysis of connective tissues, and the biomechanics of stretching.

Authors:  Behzad Babaei; Aaron J Velasquez-Mao; Stavros Thomopoulos; Elliot L Elson; Steven D Abramowitch; Guy M Genin
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3.  The fibrous cellular microenvironment, and how cells make sense of a tangled web.

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4.  Remodeling by fibroblasts alters the rate-dependent mechanical properties of collagen.

Authors:  Behzad Babaei; Ali Davarian; Sheng-Lin Lee; Kenneth M Pryse; William B McConnaughey; Elliot L Elson; Guy M Genin
Journal:  Acta Biomater       Date:  2016-03-23       Impact factor: 8.947

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Journal:  Chem Rev       Date:  2017-10-09       Impact factor: 60.622

6.  Characterization of the mechanical properties of resected porcine organ tissue using optical fiber photoelastic polarimetry.

Authors:  Alexa W Hudnut; Behzad Babaei; Sonya Liu; Brent K Larson; Shannon M Mumenthaler; Andrea M Armani
Journal:  Biomed Opt Express       Date:  2017-09-25       Impact factor: 3.732

7.  Characterizing poroelasticity of biological tissues by spherical indentation: an improved theory for large relaxation.

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8.  Combined electromechanically driven pulsating flow of nonlinear viscoelastic fluids in narrow confinements.

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Journal:  J R Soc Interface       Date:  2022-04-06       Impact factor: 4.118

9.  On the accuracy and fitting of transversely isotropic material models.

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Journal:  J Mech Behav Biomed Mater       Date:  2016-04-22

Review 10.  Recent Advances in Engineering the Stem Cell Microniche in 3D.

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  10 in total

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