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CFD simulation and experimental validation of fluid flow and particle transport in a model of alveolated airways

机译:肺气道模型中流体流动和颗粒传输的CFD模拟和实验验证

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摘要

Accurate modeling of air flow and aerosol transport in the alveolated airways is essential for quantitative predictions of pulmonary aerosol deposition. However, experimental validation of such modeling studies has been scarce. The objective of this study is to validate computational fluid dynamics (CFD) predictions of flow field and particle trajectory with experiments within a scaled-up model of alveolated airways. Steady flow (Re = 0.13) of silicone oil was captured by particle image velocimetry (PIV), and the trajectories of 0.5 and 1.2 mm spherical iron beads (representing 0.7-14.6 um aerosol in vivo) were obtained by particle tracking velocimetry (PTV). At 12 selected cross sections, the velocity profiles obtained by CFD matched well with those by PIV (within 1.7% on average). The CFD predicted trajectories also matched well with PTV experiments. These results showed that air flow and aerosol transport in models of human alveolated airways can be simulated by CFD techniques with reasonable accuracy.
机译:肺气道中的气流和气溶胶运输的准确模型对于定量预测肺气溶胶沉积至关重要。但是,这种建模研究的实验验证很少。这项研究的目的是通过在气道放大模型中进行实验,验证流场和颗粒轨迹的计算流体力学(CFD)预测。通过粒子图像测速仪(PIV)捕获硅油的稳定流(Re = 0.13),并通过粒子跟踪测速仪(PTV)获得0.5和1.2 mm球形铁珠(在体内代表0.7-14.6 um气溶胶)的轨迹。 。在12个选定的截面上,通过CFD获得的速度曲线与通过PIV获得的速度曲线非常吻合(平均在1.7%以内)。 CFD预测的轨迹也与PTV实验非常吻合。这些结果表明,人类肺气道模型中的气流和气溶胶传输可以通过CFD技术以合理的精度进行模拟。

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