Spencer Mychal, Siegmund Thomas, Mongeau Luc
School of Mechanical Engineering, Purdue University, West Lafayette, Indiana 47907.
J Acoust Soc Am. 2008 Feb;123(2):1089-103. doi: 10.1121/1.2821412.
Stresses and strains within the vocal fold tissue may play a critical role in voice fatigue, in tissue damage and resulting voice disorders, and in tissue healing. In this study, experiments were performed to determine mechanical fields on the superior surface of a self-oscillating physical model of the human vocal folds using a three-dimensional digital image correlation method. Digital images obtained using a high-speed camera together with a mirror system were used to measure displacement fields, from which strains, strain rates, and stresses on the superior surface of the model vocal folds were computed. The dependence of these variables on flow rate was established. A Hertzian impact model was used to estimate the contact pressure on the medial surface from superior surface strains. A tensile stress dominated state was observed on the superior surface, including during collision between the model folds. Collision between the model vocal folds limits the medial-lateral stress levels on the superior surface, in conjunction with compressive stress or contact pressure on the medial surface.
声带组织内的应力和应变可能在声音疲劳、组织损伤及由此导致的声音障碍以及组织愈合中起关键作用。在本研究中,采用三维数字图像相关方法进行实验,以确定人体声带自振荡物理模型上表面的力学场。使用高速摄像机和镜子系统获取的数字图像用于测量位移场,据此计算模型声带表面的应变、应变率和应力。确定了这些变量与流速的关系。利用赫兹冲击模型根据上表面应变估算内侧表面的接触压力。在上表面观察到拉伸应力主导状态,包括模型褶皱碰撞期间。模型声带褶皱之间的碰撞限制了上表面的内侧-外侧应力水平,同时伴随着内侧表面的压缩应力或接触压力。