Näger Christoph, Kniesburges Stefan, Tur Bogac, Schoder Stefan, Becker Stefan
Institute of Fluid Mechanics, Friedrich-Alexander-Universität Erlangen-Nürnberg, Cauerstraße 4, 91058 Erlangen, Germany.
Division of Phoniatrics and Pediatric Audiology, Department of Otorhinolaryngology, Head & Neck Surgery, University Hospital Erlangen, Medical School, Friedrich-Alexander-Universität Erlangen-Nürnberg, Waldstrasse 1, 91054 Erlangen, Germany.
Bioengineering (Basel). 2023 Nov 22;10(12):1343. doi: 10.3390/bioengineering10121343.
In the human phonation process, acoustic standing waves in the vocal tract can influence the fluid flow through the glottis as well as vocal fold oscillation. To investigate the amount of acoustic back-coupling, the supraglottal flow field has been recorded via high-speed particle image velocimetry (PIV) in a synthetic larynx model for several configurations with different vocal tract lengths. Based on the obtained velocity fields, acoustic source terms were computed. Additionally, the sound radiation into the far field was recorded via microphone measurements and the vocal fold oscillation via high-speed camera recordings. The PIV measurements revealed that near a vocal tract resonance frequency , the vocal fold oscillation frequency (and therefore also the flow field's fundamental frequency) jumps onto . This is accompanied by a substantial relative increase in aeroacoustic sound generation efficiency. Furthermore, the measurements show that --coupling increases vocal efficiency, signal-to-noise ratio, harmonics-to-noise ratio and cepstral peak prominence. At the same time, the glottal volume flow needed for stable vocal fold oscillation decreases strongly. All of this results in an improved voice quality and phonation efficiency so that a person phonating with --coupling can phonate longer and with better voice quality.
在人类发声过程中,声道中的声驻波会影响通过声门的流体流动以及声带振动。为了研究声回耦合的程度,通过高速粒子图像测速技术(PIV)在一个合成喉部模型中记录了声门上流场,该模型具有几种不同声道长度的配置。基于获得的速度场,计算了声源项。此外,通过麦克风测量记录了向远场的声辐射,并通过高速摄像机记录了声带振动。PIV测量结果表明,在声道共振频率附近,声带振动频率(因此也是流场的基频)跳转到共振频率。这伴随着气动声学发声效率的大幅相对增加。此外,测量结果表明,回耦合提高了发声效率、信噪比、谐波噪声比和谐波峰值突出度。同时,稳定声带振动所需的声门体积流量大幅下降。所有这些都导致了语音质量和发声效率的提高,因此通过回耦合发声的人可以发声更长时间且语音质量更好。