Evaluation of aerodynamic characteristics of a coupled fluid-structure system using generalized Bernoulli's principle: An application to vocal folds vibration.

Lucy T Zhang, Jubiao Yang
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Abstract

In this work we explore the aerodynamics flow characteristics of a coupled fluid-structure interaction system using a generalized Bernoulli equation derived directly from the Cauchy momentum equations. Unlike the conventional Bernoulli equation where incompressible, inviscid, and steady flow conditions are assumed, this generalized Bernoulli equation includes the contributions from compressibility, viscous, and unsteadiness, which could be essential in defining aerodynamic characteristics. The application of the derived Bernoulli's principle is on a fully-coupled fluid-structure interaction simulation of the vocal folds vibration. The coupled system is simulated using the immersed finite element method where compressible Navier-Stokes equations are used to describe the air and an elastic pliable structure to describe the vocal fold. The vibration of the vocal fold works to open and close the glottal flow. The aerodynamics flow characteristics are evaluated using the derived Bernoulli's principles for a vibration cycle in a carefully partitioned control volume based on the moving structure. The results agree very well to experimental observations, which validate the strategy and its use in other types of flow characteristics that involve coupled fluid-structure interactions.

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利用广义伯努利原理评估流固耦合系统的空气动力特性:声带振动的应用
在这项研究中,我们使用直接从柯西动量方程导出的广义伯努利方程,探索了流固耦合系统的空气动力学流动特性。与假定不可压缩、不粘性和稳定流动条件的传统伯努利方程不同,这个广义伯努利方程包含了可压缩性、粘性和不稳定性的贡献,这些贡献对确定空气动力学特性至关重要。推导出的伯努利原理应用于声带振动的全耦合流固耦合模拟。耦合系统采用沉浸式有限元法进行模拟,其中可压缩纳维-斯托克斯方程用于描述空气,弹性柔韧结构用于描述声带。声带的振动作用是打开和关闭声门。在基于移动结构的精心划分的控制体积中,利用推导出的伯努利原理对振动周期的空气动力学流动特性进行了评估。结果与实验观测结果非常吻合,验证了这一策略及其在涉及流体与结构耦合相互作用的其他类型流动特性中的应用。
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