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A 4DCT imaging-based breathing lung model with relative hysteresis

机译:具有相对滞后的基于4DCT成像的呼吸肺模型

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摘要

To reproduce realistic airway motion and airflow, the authors developed a deforming lung computational fluid dynamics (CFD) model based on four-dimensional (4D, space and time) dynamic computed tomography (CT) images. A total of 13 time points within controlled tidal volume respiration were used to account for realistic and irregular lung motion in human volunteers. Because of the irregular motion of 4DCT-based airways, we identified an optimal interpolation method for airway surface deformation during respiration, and implemented a computational solid mechanics-based moving mesh algorithm to produce smooth deforming airway mesh. In addition, we developed physiologically realistic airflow boundary conditions for both models based on multiple images and a single image. Furthermore, we examined simplified models based on one or two dynamic or static images. By comparing these simplified models with the model based on 13 dynamic images, we investigated the effects of relative hysteresis of lung structure with respect to lung volume, lung deformation, and imaging methods, i.e., dynamic vs. static scans, on CFD-predicted pressure drop. The effect of imaging method on pressure drop was 24 percentage points due to the differences in airflow distribution and airway geometry.
机译:为了重现现实的气道运动和气流,作者开发了基于四维(4D,时空)动态计算机断层扫描(CT)图像的变形肺计算流体动力学(CFD)模型。控制潮气量呼吸内的总共13个时间点用于说明人类志愿者的现实和不规则肺运动。由于基于4DCT的气道的不规则运动,我们确定了呼吸过程中气道表面变形的最佳插值方法,并实现了基于计算力学的移动网格算法以生成平滑的变形气道网格。此外,我们基于多个图像和单个图像为两个模型开发了生理上逼真的气流边界条件。此外,我们研究了基于一两个动态或静态图像的简化模型。通过将这些简化模型与基于13个动态图像的模型进行比较,我们研究了相对于肺体积,肺变形和成像方法(即动态扫描与静态扫描)的肺结构相对滞后对CFD预测压力的影响下降。由于气流分布和气道几何形状的差异,成像方法对压降的影响为24个百分点。

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