Vocal Fold Tissue Failure: Preliminary Data and Constitutive Modeling†

Author:

Chan Roger W.12

Affiliation:

1. Department of Otolaryngology-Head and Neck Surgery, Graduate Program in Biomedical Engineering, University of Texas Southwestern Medical Center, Dallas, TX 75390

2. Thomas Siegmund School of Mechanical Engineering, Purdue University, West Lafayette, IN 47907

Abstract

In human voice production (phonation), linear small-amplitude vocal fold oscillation occurs only under restricted conditions. Physiologically, phonation more often involves large-amplitude oscillation associated with tissue stresses and strains beyond their linear viscoelastic limits, particularly in the lamina propria extracellular matrix (ECM). This study reports some preliminary measurements of tissue deformation and failure response of the vocal fold ECM under large-strain shear. The primary goal was to formulate and test a novel constitutive model for vocal fold tissue failure, based on a standard-linear cohesive-zone (SL-CZ) approach. Tissue specimens of the sheep vocal fold mucosa were subjected to torsional deformation in vitro, at constant strain rates corresponding to twist rates of 0.01, 0.1, and 1.0 rad/s. The vocal fold ECM demonstrated nonlinear stress-strain and rate-dependent failure response with a failure strain as low as 0.40 rad. A finite-element implementation of the SL-CZ model was capable of capturing the rate dependence in these preliminary data, demonstrating the model’s potential for describing tissue failure. Further studies with additional tissue specimens and model improvements are needed to better understand vocal fold tissue failure.

Publisher

ASME International

Subject

Physiology (medical),Biomedical Engineering

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1. Ovine Vocal Fold Tissue Fatigue Response to Accumulated, Large-Amplitude Vibration Exposure at Phonatory Frequencies;Journal of Speech, Language, and Hearing Research;2019-12-18

2. Thermodynamic Derivation and Damage Evolution for a Fractional Cohesive Zone Model;Journal of Engineering Mechanics;2017-07

3. A fractional rate‐dependent cohesive‐zone model;International Journal for Numerical Methods in Engineering;2015-03-12

4. A viscoelastic laryngeal muscle model with active components;The Journal of the Acoustical Society of America;2014-04

5. Rheology of Vocal Foldx;Koutou (THE LARYNX JAPAN);2013

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