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Coupled and reduced dimensional modeling of respiratory mechanics during spontaneous breathing

机译:自发呼吸过程中呼吸力学的耦合和降维建模

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摘要

In this paper, we develop a total lung model based on a tree of OD airway and acinar models for studying respiratory mechanics during spontaneous breathing. This model utilizes both computer tomography-based geometries and artificially generated lobe-filling airway trees to model the entire conducting region of the lung. Beyond the conducting airways, we develop an acinar model, which takes into account the alveolar tissue resistance, compliance, and the intrapleural pressure. With this methodology, we compare four different OD models of airway mechanics and determine the best model based on a comparison with a 3D-0D coupled model of the conducting airways; this methodology is possible because the majority of airway resistance is confined to the lower generations, that is, the trachea and the first few bronchial generations. As an example application of the model, we simulate the flow and pressure dynamics under spontaneous breathing conditions, that is, at flow conditions driven purely by pleural space pressure. The results show good agreement, both qualitatively and quantitatively, with reported physiological values. One of the key advantages of this model is the ability to provide insight into lung ventilation in the peripheral regions. This is often crucial because this is where information, specifically for studying diseases and gas exchange, is needed. Thus, the model can be used as a tool for better understanding local peripheral lung mechanics without excluding the upper portions of the lung. This tool will be also useful for in vitro investigations of lung mechanics in both health and disease.
机译:在本文中,我们开发了一种基于OD气道树和腺泡模型的全肺模型,用于研究自发性呼吸过程中的呼吸力学。该模型利用基于计算机断层扫描的几何形状和人工生成的充满肺叶的气道树来对肺的整个传导区域进行建模。除了传导气道,我们还开发了一个腺泡模型,该模型考虑了肺泡组织阻力,顺应性和胸膜内压力。通过这种方法,我们比较了四种不同的OD气道力学模型,并基于与3D-0D气道耦合模型的比较确定了最佳模型。这种方法是可行的,因为大多数气道阻力仅限于较低的几代,即气管和前几支支气管。作为该模型的示例应用,我们模拟了自然呼吸条件下的流动和压力动态,即在纯粹由胸膜空间压力驱动的流动条件下。结果显示定性和定量与报道的生理值良好吻合。该模型的主要优点之一是能够洞悉周围区域的肺通气。这通常很关键,因为这是需要专门用于研究疾病和气体交换的信息的地方。因此,该模型可以用作更好地了解局部外周肺力学而又不排除肺上部的工具。该工具对于健康和疾病中肺力学的体外研究也很有用。

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