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Effect of upper airway on tracheobronchial fluid dynamics

机译:上呼吸道对气管支气管流体动力学的影响

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The upper airways play a significant role in the tracheal flow dynamics. Despite many previous studies, however, the effect of the upper airways on the ventilation distribution in distal airways has remained a challenge. The aim of this study is to experimentally and computationally investigate the dynamic behaviour in the intratracheal flow induced by the upper respiratory tract and to assess its influence on the subsequent tributaries. Patient-specific images from 2 different modalities (magnetic resonance imaging of the upper airways and computed tomography of the lower airways) were segmented and combined. An experimental phantom of patient-specific airways (including the oral cavity, larynx, trachea, down to generations 6-8) was generated using 3D printing. The flow velocities in this phantom model were measured by the flow-sensitised phase contrast magnetic resonance imaging technique and compared with the computational fluid dynamics simulations. Both experimental and computational results show a good agreement in the time-averaged velocity fields as well as fluctuating velocity. The flows in the proximal trachea were complex and unsteady under both lower- and higher-flow rate conditions. Computational fluid dynamics simulations were also performed with an airways model without the upper airways. Although the flow near the carina remained unstable only when the inflow rate was high, the influence of the upper airways caused notable changes in distal flow distributions when the 2 airways models were compared with and without the upper airways. The results suggest that the influence of the upper airways should be included in the respiratory flow assessment as the upper airways extensively affect the flows in distal airways and consequent ventilation distribution in the lungs.
机译:上呼吸道在气管流动动力学中起重要作用。尽管有许多先前的研究,但是,上呼吸道对远端呼吸道的通风分布的影响仍然是一个挑战。本研究的目的是通过实验和计算方法研究由上呼吸道引起的气管内流动的动态行为,并评估其对随后支流的影响。将来自2种不同模式(上呼吸道的磁共振成像和下呼吸道的计算机断层扫描)的患者特定图像进行分割和合并。使用3D打印生成了患者专用气道(包括口腔,喉,气管,直至6至8代)的实验模型。通过流敏相衬磁共振成像技术测量了该幻影模型中的流速,并将其与计算流体动力学模拟进行了比较。实验和计算结果均显示出在时均速度场以及波动速度方面的良好一致性。在低流速和高流速条件下,近端气管中的血流都是复杂且不稳定的。还使用没有上呼吸道的呼吸道模型进行了计算流体动力学模拟。尽管仅在入流率较高时,隆突附近的血流仍保持不稳定,但是当比较有和没有上呼吸道的两种气道模型时,上呼吸道的影响导致远端血流分布发生显着变化。结果表明,上呼吸道的影响应包括在呼吸流量评估中,因为上呼吸道会广泛影响远端呼吸道的流量并因此影响肺部的通气分布。

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