Computational Analysis on Aerodynamics and Vortex Formation of Sleep Apnea

Junshi Wang, Pan Han, Yaselly Sanchez, J. Xi, Haibo Dong
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Abstract

The fluid dynamics of air flow in the pharynx is critical to the vibration of the uvula and to the generation of the snoring sound. In this work, a combined experimental and computational approach was conducted to study the aerodynamics of the flow field in the human airway. An anatomically accurate pharynx model associated with different uvula kinematics was reconstructed from human magnetic resonance images (MRI) and high-speed photography. An immersed-boundary-method (IBM)-based direct numerical simulation (DNS) flow solver was used to simulate the corresponding unsteady flows in all their complexity. Analysis has been performed on vortex dynamics and pressure oscillation at various points of interest. Computations with varying airway obstructions, uvula kinematics, and vibrating frequencies were conducted to study the effect of the three factors on the vortex formation and pressure oscillation, respectively. It is found that the vortex formation is significantly affected by the airway width. The fast Fourier transformation (FFT) analysis of the pressure time history revealed the existence of higher order harmonics of the base frequency at significant amplitudes. It was also found that the pressure tended to oscillate more violently at higher uvula vibrating frequencies. Results from this work are expected to bring novel understanding on the sound producing in patients with sleep apnea and provide guidance for surgical interventions.
睡眠呼吸暂停空气动力学与涡旋形成的计算分析
咽部空气流动的流体动力学对小舌的振动和打鼾声音的产生至关重要。本文采用实验与计算相结合的方法研究了人体气道内流场的空气动力学。利用人体磁共振图像和高速摄影技术重建了具有不同小舌运动学特征的精确咽模型。采用基于浸入边界法(IBM)的直接数值模拟(DNS)流动求解器对相应的非定常流场进行了模拟。对各感兴趣点的涡动力学和压力振荡进行了分析。通过不同气道阻塞、小舌运动和振动频率的计算,分别研究了这三个因素对旋涡形成和压力振荡的影响。研究发现,气道宽度对旋涡的形成有显著影响。压力时程的快速傅里叶变换(FFT)分析表明,在显著幅度处存在基频高次谐波。小舌振动频率越高,压力振荡越剧烈。本研究结果有望对睡眠呼吸暂停患者的发声机制带来新的认识,并为手术干预提供指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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