Literature DB >> 8858261

Vocal fold vibration in simulated head voice phonation in excised canine larynges.

A Shiotani1, H Fukuda, M Kawaida, J Kanzaki.   

Abstract

In order to establish precise vibratory patterns and their clinical implication for phonation, the mode of vibration of the vocal folds around the time of register transition in excised canine larynges was analyzed multi-directionally according to various acoustic parameters. Phonation was simulated by artificially tensing the cricothyroid muscles. Vibration of the vocal folds around the time of register transition was filmed from above using ultra-high-speed cinematography and in a frontal plane using X-ray stroboscopy. Acoustic parameters included subglottic pressure, pitch, intensity and tension and were recorded simultaneously during register transition. The fundamental vibration patterns observed during vocal phonation were the same as that involved in chest voice phonation in excised canine larynges, with respect to the traveling wave of the vocal fold vibration. Changes in the physical properties of the vocal folds were considered to occur at register transition. These changes were probably strongly dependent upon changes in the structure of the lamina propria. Head voice phonation requires adaptability of the lamina propria and is less efficient than chest voice phonation. Hence, head voice phonation would be one method for assessing the condition of the vocal folds.

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Year:  1996        PMID: 8858261     DOI: 10.1007/bf00178292

Source DB:  PubMed          Journal:  Eur Arch Otorhinolaryngol        ISSN: 0937-4477            Impact factor:   2.503


  9 in total

1.  A method for studying the vibratory movements of the vocal cords: a preliminary report.

Authors:  B SONESSON
Journal:  J Laryngol Otol       Date:  1959-11       Impact factor: 1.469

2.  Results of experiments with human larynxes.

Authors:  J VAN DEN BERG; T S TAN
Journal:  Pract Otorhinolaryngol (Basel)       Date:  1959-11

3.  The falsetto. A high speed cinematographic study.

Authors:  H J RUBIN; C C HIRT
Journal:  Laryngoscope       Date:  1960-09       Impact factor: 3.325

4.  Myoelastic-aerodynamic theory of voice production.

Authors:  J VAN DEN BERG
Journal:  J Speech Hear Res       Date:  1958-09

5.  Laryngeal vibrations: measurements of the glottic wave. I. The normal vibratory cycle.

Authors:  R TIMCKE; H VON LEDEN; P MOORE
Journal:  AMA Arch Otolaryngol       Date:  1958-07

6.  [Synchronous stroboscopy of the vocal cords in man and analogous sources of sound and the duration of opening].

Authors:  R TIMCKE
Journal:  Z Laryngol Rhinol Otol       Date:  1956-05

7.  [Function of the laryngeal muscles on the position and shape of the vocal cord (author's transl)].

Authors:  Y Koike; M Hirano; M Morio; T Kasuya
Journal:  Nihon Jibiinkoka Gakkai Kaiho       Date:  1975-12-20

8.  [Vocal regulation in singing--an experimental study on a vocalist].

Authors:  M Hirano; T Miyahara; T Miyagi; H Kunitake; T Nagashima
Journal:  Nihon Jibiinkoka Gakkai Kaiho       Date:  1971-07

9.  [Study on vibration of the vocal cord during phonation using high-speed motion pictures].

Authors:  Y Yoshida
Journal:  Nihon Jibiinkoka Gakkai Kaiho       Date:  1969-07-20
  9 in total
  2 in total

1.  Correspondence between laryngeal vocal fold movement and muscle activity during speech and nonspeech gestures.

Authors:  Christopher J Poletto; Laura P Verdun; Robert Strominger; Christy L Ludlow
Journal:  J Appl Physiol (1985)       Date:  2004-05-07

2.  Excised human larynx in N-vinyl-2-pyrrolidone-embalmed cadavers can produce voiced sound by pliable vocal fold vibration.

Authors:  Makoto Miyamoto; Miki Nagase; Itaru Watanabe; Hideki Nakagawa; Kanae Karita; Domingos Hiroshi Tsuji; Arlindo Neto Montagnoli; George Matsumura; Koichiro Saito
Journal:  Anat Sci Int       Date:  2022-02-03       Impact factor: 1.693

  2 in total

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