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模拟会厌狭窄对声带的生物力学影响:声室襞耦合的低维模型。

Modeling the biomechanical influence of epilaryngeal stricture on the vocal folds: a low-dimensional model of vocal-ventricular fold coupling.

出版信息

J Speech Lang Hear Res. 2014 Apr 1;57(2):S687-704. doi: 10.1044/2014_JSLHR-S-12-0279.

Abstract

PURPOSE Physiological and phonetic studies suggest that, at moderate levels of epilaryngeal stricture, the ventricular folds impinge upon the vocal folds and influence their dynamical behavior, which is thought to be responsible for constricted laryngeal sounds. In this work, the authors examine this hypothesis through biomechanical modeling. METHOD The dynamical response of a low-dimensional, lumped-element model of the vocal folds under the influence of vocal-ventricular fold coupling was evaluated. The model was assessed for F0 and cover-mass phase difference. Case studies of simulations of different constricted phonation types and of glottal stop illustrate various additional aspects of model performance. RESULTS Simulated vocal-ventricular fold coupling lowers F0 and perturbs the mucosal wave. It also appears to reinforce irregular patterns of oscillation, and it can enhance laryngeal closure in glottal stop production. CONCLUSION The effects of simulated vocal-ventricular fold coupling are consistent with sounds, such as creaky voice, harsh voice, and glottal stop, that have been observed to involve epilaryngeal stricture and apparent contact between the vocal folds and ventricular folds. This supports the view that vocal-ventricular fold coupling is important in the vibratory dynamics of such sounds and, furthermore, suggests that these sounds may intrinsically require epilaryngeal stricture.

摘要

目的 生理和语音学研究表明,在中等程度的会厌下狭窄水平,声襞会与室带接触,并影响其动力学行为,这被认为是导致声门狭窄的原因。在这项工作中,作者通过生物力学建模来检验这一假设。

方法 评估了在声-室带耦合作用下,声带的低维集总元件模型的动力学响应。对模型的基频(F0)和覆盖质量相位差进行了评估。不同类型声门狭窄发音和声门闭锁的模拟案例研究说明了模型性能的其他各个方面。

结果 模拟的声-室带耦合降低了 F0 并扰乱了声襞的黏膜波。它似乎还加强了不规则的振动模式,并能增强声门闭锁在声门闭锁发声中的作用。

结论 模拟的声-室带耦合的影响与一些声音一致,如嘎吱声、粗糙声和声门闭锁,这些声音被认为与会厌下狭窄和声带与室带的明显接触有关。这支持了声-室带耦合对这些声音的振动动力学很重要的观点,而且还表明这些声音可能本质上需要会厌下狭窄。

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