Flow field dynamics in the pumping function of eustachian tube under varied middle ear pressure states.

IF 2.5 2区 医学 Q1 AUDIOLOGY & SPEECH-LANGUAGE PATHOLOGY
Haoze Zhang, Zhenhao Fu, Jingcheng Zhou, Yulin Ding, Xiaolong Li, Mengyuan Guo, Shiming Yang, Fangyuan Wang, Zhaohui Hou
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引用次数: 0

Abstract

The Eustachian tube, a conduit linking the tympanic cavity to the nasopharynx, poses challenges for observation of its pressure dynamics due to its concealed anatomical position. Furthermore, computational models have not yet accurately replicated its intricate structure. We propose that simplification of the Eustachian tube's structure may represent a crucial step toward elucidating the mechanisms underlying intraluminal pressure variation. In the present study, simplified models were constructed from CT scans of patients with patulous Eustachian tube. These models captured the tube's key morphological features, including a blind-ended tubular structure with a sealed tympanic orifice, an open pharyngeal orifice, and a deformable central segment. Particle image velocimetry (PIV) was used to enable visualization of flow field alterations within the lumen during the transition from a closed to an open state under various simulated middle ear pressure conditions. The following phenomena were observed: (1) Bidirectional pumping at the onset of intraluminal negative pressure, characterized by simultaneous suction from both sides toward the center; (2) Variation of the pumping phenomenon under different middle ear pressure conditions; (3) Vortex generation at the tympanic orifice upon tubal opening under middle ear negative pressure. These findings provide novel insights into the functional mechanics of the Eustachian tube, and offer supporting evidence for the surgical rationale of myringotomy with grommet insertion in patients with otitis media with effusion (OME).

不同中耳压力状态下咽鼓管泵送功能的流场动力学。
耳咽管是连接鼓室和鼻咽的管道,由于其隐蔽的解剖位置,对其压力动态的观察提出了挑战。此外,计算模型还不能精确地复制其复杂的结构。我们认为耳咽管结构的简化可能是阐明腔内压力变化机制的关键一步。本研究通过对咽鼓管扩张性患者的CT扫描建立简化模型。这些模型捕获了管道的关键形态学特征,包括一个封闭鼓室孔的盲端管状结构,一个开放的咽孔,和一个可变形的中心部分。采用粒子图像测速(PIV)技术,在不同的模拟中耳压力条件下,实现了从封闭状态到开放状态过渡过程中腔内流场变化的可视化。观察到以下现象:(1)腔内负压开始时双向抽吸,两侧同时向中心抽吸;(2)不同中耳压力条件下泵送现象的变化;(3)在中耳负压作用下,鼓室孔打开时产生的涡流。这些发现为耳咽管的功能力学提供了新的见解,并为积液性中耳炎(OME)患者行鼓膜切开术并植入套管的手术原理提供了支持证据。
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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来源期刊
Hearing Research
Hearing Research 医学-耳鼻喉科学
CiteScore
5.30
自引率
14.30%
发文量
163
审稿时长
75 days
期刊介绍: The aim of the journal is to provide a forum for papers concerned with basic peripheral and central auditory mechanisms. Emphasis is on experimental and clinical studies, but theoretical and methodological papers will also be considered. The journal publishes original research papers, review and mini- review articles, rapid communications, method/protocol and perspective articles. Papers submitted should deal with auditory anatomy, physiology, psychophysics, imaging, modeling and behavioural studies in animals and humans, as well as hearing aids and cochlear implants. Papers dealing with the vestibular system are also considered for publication. Papers on comparative aspects of hearing and on effects of drugs and environmental contaminants on hearing function will also be considered. Clinical papers will be accepted when they contribute to the understanding of normal and pathological hearing functions.
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