人体上气道和中央气道的准真实计算模型开发和流场研究。

IF 2.6 4区 医学 Q2 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Mohammad Reza Rezazadeh, Alireza Dastan, Sasan Sadrizadeh, Omid Abouali
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引用次数: 0

摘要

药物输送和微粒物质暴露对人体呼吸道的影响受到各种解剖和生理因素的影响,特别是呼吸道的结构及其流体动力学。本研究采用计算流体动力学(CFD)方法研究了人体空气传导区两个三维模型中的气流。第一个模型结合人体尸体的 CT 扫描图像和几何数据,提取了上呼吸道和中央气道,直至第九代;第二个模型则使用北冈的确定性算法,开发了从第一卡林纳到第九代末的肺气道。研究考察了两种模型在吸气和呼气阶段不同肺叶和不同世代气道的几何特征、气流速率、速度、雷诺数和压降的差异。从气管到第九代气道,两种模型在吸气和呼气阶段的平均气流速率和雷诺数都呈指数衰减。北冈模型中的平均气流速度稳定下降,而在准现实模型中,平均气流速度在第三代或第四代达到最大值。此外,研究还表明,在总流速达到 15 升/分钟时,上气道和中央气道的流场仍为层流。这项工作的结果有助于理解上呼吸道的流动行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A quasi-realistic computational model development and flow field study of the human upper and central airways.

A quasi-realistic computational model development and flow field study of the human upper and central airways.

The impact of drug delivery and particulate matter exposure on the human respiratory tract is influenced by various anatomical and physiological factors, particularly the structure of the respiratory tract and its fluid dynamics. This study employs computational fluid dynamics (CFD) to investigate airflow in two 3D models of the human air conducting zone. The first model uses a combination of CT-scan images and geometrical data from human cadaver to extract the upper and central airways down to the ninth generation, while the second model develops the lung airways from the first Carina to the end of the ninth generation using Kitaoka's deterministic algorithm. The study examines the differences in geometrical characteristics, airflow rates, velocity, Reynolds number, and pressure drops of both models in the inhalation and exhalation phases for different lobes and generations of the airways. From trachea to the ninth generation, the average air flowrates and Reynolds numbers exponentially decay in both models during inhalation and exhalation. The steady drop is the case for the average air velocity in Kitaoka's model, while that experiences a maximum in the 3rd or 4th generation in the quasi-realistic model. Besides, it is shown that the flow field remains laminar in the upper and central airways up to the total flow rate of 15 l/min. The results of this work can contribute to the understanding of flow behavior in upper respiratory tract.

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来源期刊
Medical & Biological Engineering & Computing
Medical & Biological Engineering & Computing 医学-工程:生物医学
CiteScore
6.00
自引率
3.10%
发文量
249
审稿时长
3.5 months
期刊介绍: Founded in 1963, Medical & Biological Engineering & Computing (MBEC) continues to serve the biomedical engineering community, covering the entire spectrum of biomedical and clinical engineering. The journal presents exciting and vital experimental and theoretical developments in biomedical science and technology, and reports on advances in computer-based methodologies in these multidisciplinary subjects. The journal also incorporates new and evolving technologies including cellular engineering and molecular imaging. MBEC publishes original research articles as well as reviews and technical notes. Its Rapid Communications category focuses on material of immediate value to the readership, while the Controversies section provides a forum to exchange views on selected issues, stimulating a vigorous and informed debate in this exciting and high profile field. MBEC is an official journal of the International Federation of Medical and Biological Engineering (IFMBE).
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