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小儿气道中扑动悬雍垂的空气动力学和咽部振动的计算流固耦合分析。

Computational fluid-structure interaction analysis of flapping uvula on aerodynamics and pharyngeal vibration in a pediatric airway.

机构信息

School of Energy Science and Engineering, Harbin Institute of Technology, Harbin, China.

Division of Ear, Nose and Throat Surgery, Akerhus University Hospital, Lørenskog, Norway.

出版信息

Sci Rep. 2023 Feb 3;13(1):2013. doi: 10.1038/s41598-023-28994-2.

Abstract

The uvula flapping is one of the most distinctive features of snoring and is critical in affecting airway aerodynamics and vibrations. This study aimed to elucidate the mechanism of pharyngeal vibration and pressure fluctuation due to uvula flapping employing fluid-structure interaction simulations. The followings are the methodology part: we constructed an anatomically accurate pediatric pharynx model and put attention on the oropharynx region where the greatest level of upper airway compliance was reported to occur. The uvula was assumed to be a rigid body with specific flapping frequencies to guarantee proper boundary conditions with as little complexity as possible. The airway tissue was considered to have a uniform thickness. It was found that the flapping frequency had a more significant effect on the airway vibration than the flapping amplitude, as the flapping uvula influenced the pharyngeal aerodynamics by altering the jet flow from the mouth. Breathing only through the mouth could amplify the effect of flapping uvula on aerodynamic changes and result in more significant oropharynx vibration.

摘要

悬雍垂的摆动是打鼾的最显著特征之一,对气道流动力学和振动有重要影响。本研究旨在通过流固耦合模拟阐明悬雍垂摆动引起的咽振动和压力波动的机制。以下是方法部分:我们构建了一个解剖学上精确的儿科咽模型,并特别关注被报道发生最大程度上气道顺应性的口咽区域。悬雍垂被假定为具有特定摆动频率的刚体,以保证尽可能简单的适当边界条件。气道组织被认为具有均匀的厚度。结果表明,摆动频率对气道振动的影响比摆动幅度更大,因为摆动的悬雍垂通过改变来自口腔的射流来影响咽的流动力学。仅通过口腔呼吸会放大悬雍垂摆动对气流动力学变化的影响,导致更显著的口咽振动。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ee6f/9898500/aa6dd1f7f56a/41598_2023_28994_Fig1_HTML.jpg

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