Intraglottal pressures in a three-dimensional model with a nonrectangular glottal shape

被引:30
|
作者
Scherer, Ronald C. [1 ]
Torkaman, Saeed [2 ]
Kucinschi, Bogdan R. [2 ]
Afjeh, Abdollah A. [2 ]
机构
[1] Bowling Green State Univ, Dept Commun Sci & Disorders, Bowling Green, OH 43403 USA
[2] Univ Toledo, Dept Mech Ind & Mfg Engn, Toledo, OH 43606 USA
来源
关键词
CONFINED PULSATING JETS; VOCAL FOLDS; MECHANICAL MODEL; HUMAN LARYNX; NUMERICAL-SIMULATION; SOUND GENERATION; OBLIQUE GLOTTIS; FLOW; PHONATION; DISTRIBUTIONS;
D O I
10.1121/1.3455838
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
This study used a symmetric, three-dimensional, physical model of the larynx called M6 in which the transverse plane of the glottis is formed by sinusoidal arcs for each medial vocal fold surface, creating a maximum glottal width of 0.16 cm at the location of the minimal glottal area. Three glottal angles were studied: convergent 10 degrees, uniform (0 degrees), and divergent 10 degrees. Fourteen pressure taps were incorporated in the upstream-downstream direction on the vocal fold surface at three coronal locations, at the one-fourth, one-half, and three-fourths distances in the anterior-posterior direction of the glottis. The computational software FLUENT was used to compare and augment the data for these cases. Near the glottal entrance, the pressures were similar across the three locations for the uniform case; however, for the convergent case the middle pressure distribution was lower by 4% of the transglottal pressure, and lower by about 2% for the divergent case. Also, there were significant secondary velocities toward the center from both the anterior commissure and vocal process regions (of as much as approximately 10% of the axial velocities). Thus, the three dimensionality created relatively small pressure gradients and significant secondary velocities anteriorly-posteriorly within the glottis. (C) 2010 Acoustical Society of America. [DOI: 10.1121/1.3455838]
引用
收藏
页码:828 / 838
页数:11
相关论文
共 50 条
  • [41] Dynamic glottal pressures in an excised hemilarynx model
    Alipour, F
    Scherer, RC
    JOURNAL OF VOICE, 2000, 14 (04) : 443 - 454
  • [42] Direct-numerical simulation of the glottal jet and vocal-fold dynamics in a three-dimensional laryngeal model
    Zheng, X.
    Mittal, R.
    Xue, Q.
    Bielamowicz, S.
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2011, 130 (01): : 404 - 415
  • [43] Analysis and classification of three-dimensional trunk shape of women by using the human body shape model
    Nakamura, Kensuke
    Kurokawa, Takao
    INTERNATIONAL JOURNAL OF COMPUTER APPLICATIONS IN TECHNOLOGY, 2009, 34 (04) : 278 - 284
  • [44] Asymmetric glottal jet deflection: Differences of two- and three-dimensional models
    Mattheus, Willy
    Bruecker, Christoph
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2011, 130 (06): : EL373 - EL379
  • [45] Three-dimensional passive earth pressures by kinematical approach
    Soubra, AH
    Regenass, P
    JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 2000, 126 (11) : 969 - 978
  • [47] Analysis of the three-dimensional tongue shape using a three-index factor analysis model
    Zheng, YL
    Hasegawa-Johnson, M
    Pizza, S
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2003, 113 (01): : 478 - 486
  • [48] Weaving system tailors three-dimensional shape
    High Performance Textiles, (10):
  • [49] The Effects of Three-Dimensional Context on Shape Perception
    Sereno, Margaret E. Z.
    Robles, Kelly E.
    Kikumoto, Atsushi
    Bies, Alexander J.
    PSYCHOLOGICAL SCIENCE, 2020, 31 (04) : 381 - 396
  • [50] Three-dimensional shape modeling with extended hyperquadrics
    Ohuchi, M
    Saito, T
    THIRD INTERNATIONAL CONFERENCE ON 3-D DIGITAL IMAGING AND MODELING, PROCEEDINGS, 2001, : 262 - 269