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A Numerical and Experimental Investigation of the Effect of False Vocal Fold Geometry on Glottal Flow

Overview of attention for article published in Journal of Biomechanical Engineering, October 2013
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Article details
Title
A Numerical and Experimental Investigation of the Effect of False Vocal Fold Geometry on Glottal Flow
Published in
Journal of Biomechanical Engineering, October 2013
DOI 10.1115/1.4025324
Pubmed ID
Authors
Abstract

The false vocal folds are hypothesized to affect the laryngeal flow during phonation. This hypothesis is tested both computationally and experimentally using rigid models of the human larynges. The computations are performed using an incompressible Navier-Stokes solver with a second order, sharp, immersed-boundary formulation, while the experiments are carried out in a wind tunnel with physiologic speeds and dimensions. The computational flow structures are compared with available glottal flow visualizations and are employed to study the vortex dynamics of the glottal flow. Furthermore, pressure data are collected on the surface of the laryngeal models experimentally and computationally. The investigation focuses on three geometric features: the size of the false vocal fold gap; the height between the true and false vocal folds; and the width of the laryngeal ventricle. It is shown that the false vocal fold gap has a significant effect on glottal flow aerodynamics, whereas the second and the third geometric parameters are of lesser importance. The link between pressure distribution on the surface of the larynx and false vocal fold geometry is discussed in the context of vortex evolution in the supraglottal region. It was found that the formation of the starting vortex considerably affects the pressure distribution on the surface of the larynx. The interaction of this vortex structure with false vocal folds creates rebound vortices in the laryngeal ventricle. In the cases of small false vocal fold gap, these rebound vortices are able to reach the true vocal folds during a time period comparable with one cycle of the phonation. Moreover, they can create complex vorticity patterns, which result in significant pressure fluctuations on the surface of the larynx.

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Mendeley demographics

Mendeley demographics

The data shown below were compiled from readership statistics for 13 Mendeley readers of this research output. Click here to see the associated Mendeley record.
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Geographical breakdown

Geographical breakdown
Country Count As %
United States 1 8%
Unknown 12 92%

Demographic breakdown

Readers by professional status
Readers by professional status Count As %
Researcher 3 23%
Student > Bachelor 2 15%
Student > Ph. D. Student 2 15%
Student > Master 2 15%
Student > Doctoral Student 1 8%
Other 1 8%
Unknown 2 15%
Readers by discipline
Readers by discipline Count As %
Engineering 6 46%
Agricultural and Biological Sciences 1 8%
Neuroscience 1 8%
Medicine and Dentistry 1 8%
Unknown 4 31%
Attention Score in Context

Attention Score in Context

This research output has an Altmetric Attention Score of 1. This is our high-level measure of the quality and quantity of online attention that it has received. This Attention Score, as well as the ranking and number of research outputs shown below, was calculated when the research output was last mentioned on 07 September 2013.
All research outputs
#18,347,414
of 22,721,584 outputs
Outputs from Journal of Biomechanical Engineering
#974
of 1,161 outputs
Outputs of similar age
#156,252
of 209,627 outputs
Outputs of similar age from Journal of Biomechanical Engineering
#4
of 5 outputs
Altmetric has tracked 22,721,584 research outputs across all sources so far. This one is in the 11th percentile – i.e., 11% of other outputs scored the same or lower than it.
So far Altmetric has tracked 1,161 research outputs from this source. They receive a mean Attention Score of 3.6. This one is in the 10th percentile – i.e., 10% of its peers scored the same or lower than it.
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