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语音产生过程中流固声相互作用的计算建模

Computational Modeling of Fluid-Structure-Acoustics Interaction during Voice Production.

作者信息

Jiang Weili, Zheng Xudong, Xue Qian

机构信息

Mechanical Engineering Department, University of Maine , Orono, ME , USA.

出版信息

Front Bioeng Biotechnol. 2017 Feb 13;5:7. doi: 10.3389/fbioe.2017.00007. eCollection 2017.

Abstract

The paper presented a three-dimensional, first-principle based fluid-structure-acoustics interaction computer model of voice production, which employed a more realistic human laryngeal and vocal tract geometries. Self-sustained vibrations, important convergent-divergent vibration pattern of the vocal folds, and entrainment of the two dominant vibratory modes were captured. Voice quality-associated parameters including the frequency, open quotient, skewness quotient, and flow rate of the glottal flow waveform were found to be well within the normal physiological ranges. The analogy between the vocal tract and a quarter-wave resonator was demonstrated. The acoustic perturbed flux and pressure inside the glottis were found to be at the same order with their incompressible counterparts, suggesting strong source-filter interactions during voice production. Such high fidelity computational model will be useful for investigating a variety of pathological conditions that involve complex vibrations, such as vocal fold paralysis, vocal nodules, and vocal polyps. The model is also an important step toward a patient-specific surgical planning tool that can serve as a no-risk trial and error platform for different procedures, such as injection of biomaterials and thyroplastic medialization.

摘要

该论文提出了一种基于第一性原理的三维流体-结构-声学相互作用语音产生计算机模型,该模型采用了更逼真的人类喉部和声道几何形状。捕捉到了自激振动、声带重要的收敛-发散振动模式以及两种主要振动模式的同步。发现与语音质量相关的参数,包括声门流波形的频率、开放商、偏度商和流速,均在正常生理范围内。证明了声道与四分之一波长谐振器之间的类比。发现声门内的声学扰动通量和压力与其不可压缩对应物处于同一量级,这表明在语音产生过程中存在强烈的源-滤波器相互作用。这种高保真计算模型将有助于研究各种涉及复杂振动的病理状况,如声带麻痹、声带小结和声带息肉。该模型也是朝着特定患者手术规划工具迈出的重要一步,该工具可作为不同手术(如生物材料注射和甲状腺成形术内侧化)的无风险试错平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26ae/5304452/04a990674353/fbioe-05-00007-g001.jpg

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