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Experimental and numerical investigation of the sound generation mechanisms of sibilant fricatives using a simplified vocal tract model

机译:一种简化声道模型的SIBILANT玻璃玻璃玻璃剂的声发电机制的实验性和数值研究

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摘要

The sound generation mechanisms of sibilant fricatives were investigated with experimental measurements and large-eddy simulations using a simplified vocal tract model. The vocal tract geometry was simplified to a three-dimensional rectangular channel, and differences in the geometries while pronouncing fricatives /s/ and /s/ were expressed by shifting the position of the tongue and its constricted flow channel. Experimental results showed that the characteristic peak frequency of the fricatives decreased when the distance between the tongue and teeth increased. Numerical simulations revealed that the jet flow generated from the constriction impinged on the upper teeth wall and caused the main sound source upstream and downstream from the gap between the teeth. While magnitudes of the sound source decreased with increments of the frequency, amplitudes of the pressure downstream from the constriction increased at the peak frequencies of the corresponding tongue position. These results indicate that the sound pressures at the peak frequencies increased by acoustic resonance in the channel downstream from the constriction, and the different frequency characteristics between /s/ and /s/ were produced by changing the constriction and the acoustic node positions inside the vocal tract. Published by AIP Publishing.
机译:使用简化的声道模型研究了使用实验测量和大涡模拟的SIBILANT杂交的声音产生机制。声道几何形状被简化到三维矩形通道,并且通过移位舌头的位置及其收缩流动通道表示几何形状的差异。实验结果表明,当舌和牙齿之间的距离增加时,摩擦的特征峰值频率降低。数值模拟显示,从撞击在上牙墙上的收缩中产生的喷射流程,并导致主声源上游和下游从牙齿之间的间隙。虽然声源的幅度随频率的增量而减小,但是在相应舌部位置的峰值频率下,从收缩的压力下游的压力的幅度增加。这些结果表明峰值频率的声压通过收缩的沟道中的通道中的声谐振增加,并且通过改变声带内部的收缩和声学节点位置来产生/ s /和/ s / / s / s /之间的不同频率特性道。通过AIP发布发布。

著录项

  • 来源
    《Physics of fluids 》 |2018年第3期| 共10页
  • 作者单位

    Osaka Univ Grad Sch Engn Sci Dept Mech Sci &

    Bioengn 1-3 Machikaneyama Toyonaka Osaka 5608531 Japan;

    Osaka Univ Dent Hosp Div Med Informat 1-8 Yamadaoka Suita Osaka 5650871 Japan;

    Osaka Univ Grad Sch Engn Sci Dept Mech Sci &

    Bioengn 1-3 Machikaneyama Toyonaka Osaka 5608531 Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学 ;
  • 关键词

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