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声道收缩对合成声带模型空气动力学测量的影响。

The effects of vocal tract constrictions on aerodynamic measures in a synthetic vocal fold model.

机构信息

The University of Maine, Orono, Maine 04469, USA.

Bowling Green State University, Bowling Green, Ohio 43404, USA.

出版信息

J Acoust Soc Am. 2023 Nov 1;154(5):3310-3320. doi: 10.1121/10.0022383.

Abstract

According to nonlinear source-filter theory, as the strength of the coupling between the source and filter increases, typically by a decrease in the vocal tract cross-sectional area, the resultant increase in the inertance of the vocal tract yields an increase in the interactions between acoustic pressures within the vocal tract and the changing glottal airflow and/or the vibratory pattern of the vocal folds as noted in Titze [(2008). J. Acoust. Soc. Am. 123(4), 1902-1915]. The purpose of the current research was to examine the effects of parametric vocal tract constrictions mimicking epilaryngeal tube and lip narrowing on aerodynamic measures in a dynamic self-oscillating physical model of the vocal folds and vocal tract. Multilayered silicone vocal fold models were created based on Murray and Thomson [(2011). J. Visualized Exp. 58, e3498] and Murray and Thomson [(2012). J. Acoust. Soc. Am. 132(5), 3428-3438] and mounted to a simple synthetic trachea and supraglottal vocal tract model. Four constriction cross-sectional areas were examined at two locations (i.e., at the epilarynx and lip regions). Phonation threshold pressure and flow were measured at phonation onset and offset using four M5-CONV vocal fold models. Results indicated that both constriction magnitude and location are relevant factors in determining glottal aerodynamics. In general, a narrow epilarynx tube or lip constriction resulted in the lowest onset pressures and airflows while the no vocal tract condition resulted in the highest onset pressures and airflows.

摘要

根据非线性声源滤波器理论,随着声源和滤波器之间的耦合强度增加(通常通过减小声道截面积来实现),声道惯性的增加会导致声道内的声压与不断变化的声门气流之间的相互作用增加,以及声带的振动模式增加,如 Titze 所述 [(2008). J. Acoust. Soc. Am. 123(4), 1902-1915]。本研究的目的是检查模仿会厌管和唇狭窄的参数声道收缩对声带和声道的动态自激物理模型中的空气动力学测量的影响。基于 Murray 和 Thomson [(2011). J. Visualized Exp. 58, e3498] 和 Murray 和 Thomson [(2012). J. Acoust. Soc. Am. 132(5), 3428-3438] 创建了多层硅树脂声带模型,并将其安装到简单的合成气管和喉上声道模型上。在两个位置(即会厌部和唇部)检查了四个收缩截面积。使用四个 M5-CONV 声带模型在发声起始和结束时测量声门起始压和流量。结果表明,收缩幅度和位置都是确定声门气流动力学的相关因素。一般来说,狭窄的会厌管或唇狭窄会导致最低的起始压力和气流,而无声道条件会导致最高的起始压力和气流。

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