Sound source locations and their roles in Japanese voiceless "glottal" fricative production.

IF 2.1 2区 物理与天体物理 Q2 ACOUSTICS
Tsukasa Yoshinaga, Kikuo Maekawa, Akiyoshi Iida
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引用次数: 0

Abstract

Although [h] is described as a glottal fricative, it has never been demonstrated whether [h] has its source exclusively at the glottis. In this study, sound source locations and their influence on sound amplitudes were investigated by conducting mechanical experiments and airflow simulations. Vocal tract data of [h] were obtained in three phonemic contexts from two native Japanese subjects using three-dimensional static magnetic resonance imaging (MRI). Acrylic vocal tract replicas were constructed, and the sound was reproduced by supplying airflow to the vocal tracts with adducted or abducted vocal folds. The sound source locations were estimated by solving the Navier-Stokes equations. The results showed that the amplitudes of sounds produced by the vocal tracts with an open glottis were in a similar range (±3 dB) to those with a glottal gap of 3 mm in some contexts. The sound sources in these cases were observed in the pharyngeal cavity or near the soft palate. Similar degrees of oral constrictions were observed in the real-time MRI, indicating that the sound traditionally described as [h] is produced, at least in some contexts, with sound sources of turbulent flow generated by a supralaryngeal constriction of the following vowel.

声源位置及其在日语无声 "喉 "摩擦音发音中的作用。
虽然[h]被描述为喉擦音,但从未有人证明[h]的声源是否完全位于声门。本研究通过机械实验和气流模拟研究了声源位置及其对声音振幅的影响。研究人员利用三维静态磁共振成像(MRI)技术,从两名母语为日语的受试者身上获取了三种音位语境下 [h] 的声道数据。研究人员制作了丙烯酸声带复制品,并通过向声带提供气流再现了声带内收或外展的声音。通过求解纳维-斯托克斯方程估计声源位置。结果表明,在某些情况下,声门开放的声道发出的声音振幅与声门间隙为 3 毫米的声道发出的声音振幅相近(±3 dB)。这些情况下的声源位于咽腔或软腭附近。在实时磁共振成像中也观察到了类似程度的口腔收缩,这表明传统上被描述为[h]的声音,至少在某些情况下,是由后面元音的咽上收缩产生的湍流声源发出的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.60
自引率
16.70%
发文量
1433
审稿时长
4.7 months
期刊介绍: Since 1929 The Journal of the Acoustical Society of America has been the leading source of theoretical and experimental research results in the broad interdisciplinary study of sound. Subject coverage includes: linear and nonlinear acoustics; aeroacoustics, underwater sound and acoustical oceanography; ultrasonics and quantum acoustics; architectural and structural acoustics and vibration; speech, music and noise; psychology and physiology of hearing; engineering acoustics, transduction; bioacoustics, animal bioacoustics.
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