Literature DB >> 22483778

Effects of dehydration on the viscoelastic properties of vocal folds in large deformations.

Amir K Miri1, François Barthelat, Luc Mongeau.   

Abstract

Dehydration may alter vocal fold viscoelastic properties, thereby hampering phonation. The effects of water loss induced by an osmotic pressure potential on vocal fold tissue viscoelastic properties were investigated. Porcine vocal folds were dehydrated by immersion in a hypertonic solution, and quasi-static and low-frequency dynamic traction tests were performed for elongations of up to 50%. Digital image correlation was used to determine local strains from surface deformations. The elastic modulus and the loss factor were then determined for normal and dehydrated tissues. An eight-chain hyperelastic model was used to describe the observed nonlinear stress-stretch behavior. Contrary to the expectations, the mass history indicated that the tissue absorbed water during cyclic extension when submerged in a hypertonic solution. During loading history, the elastic modulus was increased for dehydrated tissues as a function of strain. The response of dehydrated tissues was much less affected when the load was released. This observation suggests that hydration should be considered in micromechanical models of the vocal folds. The internal hysteresis, which is often linked to phonation effort, increased significantly with water loss. The effects of dehydration on the viscoelastic properties of vocal fold tissue were quantified in a systematic way. A better understanding of the role of hydration on the mechanical properties of vocal fold tissue may help to establish objective dehydration and phonotrauma criteria.
Copyright © 2012 The Voice Foundation. Published by Mosby, Inc. All rights reserved.

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Year:  2012        PMID: 22483778      PMCID: PMC3406245          DOI: 10.1016/j.jvoice.2011.09.003

Source DB:  PubMed          Journal:  J Voice        ISSN: 0892-1997            Impact factor:   2.009


  18 in total

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  10 in total

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Journal:  Biomech Model Mechanobiol       Date:  2014-05-03

5.  Nanoscale viscoelasticity of extracellular matrix proteins in soft tissues: A multiscale approach.

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7.  Indentation of poroviscoelastic vocal fold tissue using an atomic force microscope.

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Review 9.  Systemic hydration: relating science to clinical practice in vocal health.

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10.  Microstructural characterization of vocal folds toward a strain-energy model of collagen remodeling.

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  10 in total

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