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Numerical Simulation of Ozone Uptake in the Respiratory Tract During Steady Inspiratory Flow

机译:稳定吸气过程中呼吸道中臭氧吸收的数值模拟

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The pattern of lung injury induced by the inhalation of ozone is believed to depend on the dose delivered to different tissues in the respiratory tract. To test this hypothesis, we performed numerical simulations of ozone transport and uptake in anatomically-correct geometries of the conductive airways of a Rhesus monkey. The airway geometry was created using three-dimensional reconstruction of the tracheobron-chial tree from MRI images of the lung, and an unstructured volume mesh was generated for the first few generations of the resulting branched structure. Three-dimensional numerical solutions of the Navier- Stokes, continuity, and species convection-diffusion equations were subsequently obtained for steady inspiratory flow at Reynolds number 230. The reaction model in the epithelial lining fluid was assumed as an infinitely fast reaction model. The total rate of 0_3 uptake within each generation was determined, and hot spots of O_3 flux on the airway walls were identified. Spikes in 0_3 flux appeared downstream of the first bifurcation, as was true for focal sites of epithelial damage previously observed in rats [ 1 ]. Results of the three-dimensional simulations for O_3 uptake along a single asymmetrically- branched airway path were also compared to the predictions of an axisymmetric single-path model (ASPM). Single-path simulations of gas uptake were in good agreement with predictions of the more realistic three-dimensional simulations.
机译:据信由臭氧吸入引起的肺损伤的方式取决于输送到呼吸道不同组织的剂量。为了验证这一假设,我们在恒河猴导电气道的解剖学上正确的几何形状中进行了臭氧传输和吸收的数值模拟。通过从肺部MRI图像对气管支气管-支气管树进行三维重建来创建气道几何形状,并为所生成的分支结构的前几代生成非结构化的体积网格。随后获得了雷诺数为230的稳定吸气流量的Navier-Stokes,连续性和物种对流扩散方程的三维数值解。假定上皮衬里流体中的反应模型为无限快速的反应模型。确定每一代中总的0_3吸收速率,并确定气道壁上O_3通量的热点。 0_3通量的尖峰出现在第一个分叉的下游,就像以前在大鼠中观察到的上皮损伤的灶性部位一样[1]。还将沿单个不对称分支气道路径进行O_3吸收的三维模拟结果与轴对称单路径模型(ASPM)的预测进行了比较。气体吸收的单径模拟与更逼真的三维模拟的预测非常吻合。

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