A mechanical model of human vocal folds has been designed by researchers to show how asymmetrical airflow impacts normal and diseased vocal fold motion.
A mechanical model of human vocal folds has been designed by researchers to show how asymmetrical airflow impacts normal and diseased vocal fold motion. These observations may lead to new devices to help those who cannot take for granted their ability to vocalize. Engineering professor Michael Plesniak and post-doctoral researcher Byron Erath at the George Washington University (GWU) Biofluid Dynamics Laboratory In Washington, D.C., and their colleague professor Sean Peterson at the University of Waterloo have built the model.
"Potential application of this finding includes assisting otolaryngologists to optimize surgical procedures to correct vocal fold paralysis with an implant that changes the position of the damaged vocal fold," Plesniak said.
Vocal folds, commonly known as vocal cords, are the vibrating structures of the phonatory process that stretch across the larynx, and are driven by air expelled from the lungs. Variability in the physics of sound production from the vocal folds can mark the difference between communication that connects people and enriches their lives and speech so impaired it isolates and estranges.
In the GWU team's most recent investigation, they found that asymmetric flow develops when there is an adverse pressure gradient. Under these conditions, the glottal jet separates from one vocal fold and attaches to the opposing one, disrupting the pressure forces that drive vocal fold motion. This change can have devastating impacts on speech.
"In the past, many investigators have assumed air flow is symmetrical over the vocal folds," explained Erath.
"We've discovered that this is not always the case."
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Data from the GWU team suggests that devising an implant material with tissue properties that mimic those of the voice apparatus is key to restoring the good vibrations that are the foundation of intelligible speech.
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Source-ANI