<p>This study examines the influence of lung geometry, physical activity intensity, and aerosol concentration on the deposition efficiencies (DEs) of particulate matter with surface-bound polycyclic aromatic hydrocarbons (PM-<sub>PAHs</sub>) in human lung generations 3–6. Two-phase flows were effected in ANSYS 2020R2 platform using planar and orthogonal lung geometries, with two levels of physical activities, 4 metabolic equivalents (4 METs), and 8 METs. Aerosol concentrations of 0.95&#xa0;μg‧m<sup>−3</sup>, 1.57&#xa0;μg‧m<sup>−3</sup>, and 2.04&#xa0;μg‧m<sup>−3</sup> represent rural, urban, and industrial areas, respectively. Relative differences in DEs for 1&#xa0;μm, 3.2&#xa0;μm, and 5.6&#xa0;μm exhibit variations between the two geometries with ranges of 0%–84.4% for 4 METs and 1.2%–50.7% for 8 METs. The first carina region was the most significant hotspot for the 5.6&#xa0;μm particles. On the other hand, the 1&#xa0;μm and 3.2&#xa0;μm aerosols infiltrated and deposited evenly at the lower sections of the lungs. Regarding PM-<sub>PAHs</sub> doses, spatial variations indicate an industrial &gt; urban &gt; rural hierarchy. This investigation suggests that individuals in industrial and urban locations should manage the intensity of their outdoor activities to minimize exposure to PM-<sub>PAHs</sub>. These findings are instrumental for public health interventions aimed at reducing exposure to PM-<sub>PAHs</sub> and preventing associated health problems.</p>

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Influence of Bifurcation Morphology on Exercise-Induced PAH Deposition in the Lungs: A Computational Modeling Approach for Air Quality Research

  • Justus Kavita Mutuku,
  • Hsin-Chieh Kung,
  • Wei-Hsin Chen,
  • Chien-Er Huang,
  • Kuan Shiong Khoo,
  • Pau Loke Show

摘要

This study examines the influence of lung geometry, physical activity intensity, and aerosol concentration on the deposition efficiencies (DEs) of particulate matter with surface-bound polycyclic aromatic hydrocarbons (PM-PAHs) in human lung generations 3–6. Two-phase flows were effected in ANSYS 2020R2 platform using planar and orthogonal lung geometries, with two levels of physical activities, 4 metabolic equivalents (4 METs), and 8 METs. Aerosol concentrations of 0.95 μg‧m−3, 1.57 μg‧m−3, and 2.04 μg‧m−3 represent rural, urban, and industrial areas, respectively. Relative differences in DEs for 1 μm, 3.2 μm, and 5.6 μm exhibit variations between the two geometries with ranges of 0%–84.4% for 4 METs and 1.2%–50.7% for 8 METs. The first carina region was the most significant hotspot for the 5.6 μm particles. On the other hand, the 1 μm and 3.2 μm aerosols infiltrated and deposited evenly at the lower sections of the lungs. Regarding PM-PAHs doses, spatial variations indicate an industrial > urban > rural hierarchy. This investigation suggests that individuals in industrial and urban locations should manage the intensity of their outdoor activities to minimize exposure to PM-PAHs. These findings are instrumental for public health interventions aimed at reducing exposure to PM-PAHs and preventing associated health problems.