COMPUTATIONAL FLUID DYNAMICS ANALYSIS ON OVERWEIGHT SLEEP APNEA PATIENT UNDER VARIOUS BREATHING FLOW PATTERNS

Q4 Earth and Planetary Sciences ASEAN Engineering Journal Pub Date : 2023-05-31 DOI:10.11113/aej.v13.18864
Muhammad Nooramin Che Yaakob, W. M. Faizal, C. Khor
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Abstract

Obstructive Sleep Apnea (OSA) is a breathing disorder that occurs during sleep. This syndrome affects numerous people, especially those with abnormal body fat composition parameters such as body mass index (BMI) of more than 25 kg/m2 (overweight & obesity). OSA ensues when the tongue and soft palate muscles in a relaxed condition move towards gravity when the patient is in a supine position; this causes narrowing and blockage on the upper airway affecting breathing. There are several treatments for OSA, including upper airway surgery. A better understanding of airflow characteristics will assist ENT surgeons in identifying the blockage area. This paper examines airflow characteristics of the upper airway for overweight sleep apnea patients. The narrow and blockage area on the respiratory tract causes turbulence formation that is evaluated using Computational Fluid Dynamic (CFD) based on an actual parameter of the 3D model obtained by CT scan image result. Reynold’s averaged Navier-Stoke (RANS) equation and turbulent model, k-ω shear stress transport (SST), were applied. Airflow fluctuation was characterized by crucial parameters such as velocity, pressure, and turbulent kinetic energy (TKE). The result shows that the narrow cross-sectional area of the airway causes accretion of the velocity and pressure in the pharyngeal airway. The increasing airflow parameter results in high turbulent kinetic energy (TKE) that will determine the severity level of OSA patients. Investigating airflow characteristics in overweight OSA patients will help the medical practitioner validate the narrow and blockage area for the surgery.
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不同呼吸模式下超重睡眠呼吸暂停患者的计算流体动力学分析
阻塞性睡眠呼吸暂停(OSA)是一种发生在睡眠中的呼吸障碍。这种综合征影响许多人,尤其是那些身体脂肪组成参数异常的人,如体重指数(BMI)超过25 kg/m2(超重和肥胖)。当患者处于仰卧位时,处于放松状态的舌头和软腭肌肉向重力方向移动时,OSA随之发生;这会导致上呼吸道变窄和堵塞,影响呼吸。OSA有几种治疗方法,包括上呼吸道手术。更好地了解气流特征将有助于耳鼻喉科外科医生识别堵塞区域。本文研究超重睡眠呼吸暂停患者上呼吸道的气流特征。呼吸道上的狭窄和堵塞区域导致湍流形成,该湍流形成基于通过CT扫描图像结果获得的3D模型的实际参数使用计算流体动力学(CFD)来评估。采用雷诺平均Navier-Stoke(RANS)方程和湍流模型k-ω剪切应力输运(SST)。气流波动由速度、压力和湍流动能等关键参数表征。结果表明,气道的狭窄横截面积导致咽气道的速度和压力增加。气流参数的增加导致高湍流动能(TKE),这将决定OSA患者的严重程度。研究超重OSA患者的气流特征将有助于医生验证手术的狭窄和堵塞区域。
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
ASEAN Engineering Journal
ASEAN Engineering Journal Engineering-Engineering (all)
CiteScore
0.60
自引率
0.00%
发文量
75
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