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  • The process of human phonation involves a complex interaction between the physical domains of structural dynamics, fluid flow, and acoustic sound production and radiation. Given the high degree of nonlinearity of these processes, even small anatomical or physiological disturbances can significantly affected the voice signal. In the worst cases, patients can lose their voice and hence the normal mode of speech communication. To improve medical therapies and surgical techniques it is very important to understand better the physics of the human phonation process. Due to the limited experimental access to the human larynx, alternative strategies, including artificial vocal folds, have been developed. The following review gives an overview of experimental investigations of artificial vocal folds within the last30 years. The models are sorted into three groups: static models, externally driven models, and self-oscillating models. The focus is on the different models of the human vocal folds and on the ways in which they have been applied.
  • The process of human phonation involves a complex interaction between the physical domains of structural dynamics, fluid flow, and acoustic sound production and radiation. Given the high degree of nonlinearity of these processes, even small anatomical or physiological disturbances can significantly affected the voice signal. In the worst cases, patients can lose their voice and hence the normal mode of speech communication. To improve medical therapies and surgical techniques it is very important to understand better the physics of the human phonation process. Due to the limited experimental access to the human larynx, alternative strategies, including artificial vocal folds, have been developed. The following review gives an overview of experimental investigations of artificial vocal folds within the last30 years. The models are sorted into three groups: static models, externally driven models, and self-oscillating models. The focus is on the different models of the human vocal folds and on the ways in which they have been applied. (en)
Title
  • In Vitro Experimental Investigation of Voice Production
  • In Vitro Experimental Investigation of Voice Production (en)
skos:prefLabel
  • In Vitro Experimental Investigation of Voice Production
  • In Vitro Experimental Investigation of Voice Production (en)
skos:notation
  • RIV/61388998:_____/11:00363700!RIV12-AV0-61388998
http://linked.open...avai/predkladatel
http://linked.open...avai/riv/aktivita
http://linked.open...avai/riv/aktivity
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  • 3
http://linked.open...vai/riv/dodaniDat
http://linked.open...aciTvurceVysledku
http://linked.open.../riv/druhVysledku
http://linked.open...iv/duvernostUdaju
http://linked.open...titaPredkladatele
http://linked.open...dnocenehoVysledku
  • 204039
http://linked.open...ai/riv/idVysledku
  • RIV/61388998:_____/11:00363700
http://linked.open...riv/jazykVysledku
http://linked.open.../riv/klicovaSlova
  • artificial vocal folds; flow-induced acoustics; fluid-stucture-acoustic interaction; human phonation (en)
http://linked.open.../riv/klicoveSlovo
http://linked.open...odStatuVydavatele
  • AE - Stát Spojené arabské emiráty
http://linked.open...ontrolniKodProRIV
  • [909C986286FE]
http://linked.open...i/riv/nazevZdroje
  • Current Bioinformatics
http://linked.open...in/vavai/riv/obor
http://linked.open...ichTvurcuVysledku
http://linked.open...cetTvurcuVysledku
http://linked.open...UplatneniVysledku
http://linked.open...v/svazekPeriodika
  • 6
http://linked.open...iv/tvurceVysledku
  • Horáček, Jaromír
  • Barney, A.
  • Becker, S.
  • Brücker, Ch.
  • Kniesburges, S.
  • Thomson, S. L.
  • Triep, M.
  • Šidlof, Petr
http://linked.open...ain/vavai/riv/wos
  • 000295411100004
http://linked.open...n/vavai/riv/zamer
issn
  • 1574-8936
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