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识别影响双层自激计算声门流致振动的几何参数。

Identification of geometric parameters influencing the flow-induced vibration of a two-layer self-oscillating computational vocal fold model.

机构信息

Department of Mechanical Engineering, Brigham Young University, Provo, Utah 84602, USA.

出版信息

J Acoust Soc Am. 2011 Apr;129(4):2121-32. doi: 10.1121/1.3557046.

Abstract

Simplified models have been used to simulate and study the flow-induced vibrations of the human vocal folds. While it is clear that the models' responses are sensitive to geometry, it is not clear how and to what extent specific geometric features influence model motion. In this study geometric features that played significant roles in governing the motion of a two-layer (body-cover), two-dimensional, finite element vocal fold model were identified. The model was defined using a flow solver based on the viscous, unsteady, Navier-Stokes equations and a solid solver that allowed for large strain and deformation. A screening-type design-of-experiments approach was used to identify the relative importance of 13 geometric parameters. Five output measures were analyzed to assess the magnitude of each geometric parameter's effect on the model's motion. The measures related to frequency, glottal width, flow rate, intraglottal angle, and intraglottal phase delay. The most significant geometric parameters were those associated with the cover--primarily the pre-phonatory intraglottal angle--as well as the body inferior angle. Some models exhibited evidence of improved model motion, including mucosal wave-like motion and alternating convergent-divergent glottal profiles, although further improvements are still needed to more closely mimic human vocal fold motion.

摘要

简化模型已被用于模拟和研究人体声带的流致振动。虽然很明显,模型的响应对几何形状敏感,但不清楚特定的几何特征如何以及在何种程度上影响模型运动。在这项研究中,确定了对两层(体-盖)、二维、有限元声带模型运动起重要作用的几何特征。该模型使用基于粘性、非定常、纳维-斯托克斯方程的流动求解器和允许大应变和变形的固体求解器来定义。使用筛选型实验设计方法来确定 13 个几何参数的相对重要性。分析了五个输出量度,以评估每个几何参数对模型运动的影响程度。这些度量与频率、声门宽度、流量、声门内角度和声门内相位延迟有关。最显著的几何参数与盖有关,主要是前发音声门内角度,以及体下部角度。一些模型表现出模型运动得到改善的迹象,包括黏膜波状运动和交替的收敛-发散声门内轮廓,尽管仍需要进一步改进,以更接近地模拟人体声带运动。

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