• Title of article

    Transient Dynamics Simulation of Airflow in a CT-Scanned Human Airway Tree: More or Fewer Terminal Bronchi?

  • Author/Authors

    Qi, Shouliang Northeastern University - Shenyang, China , Zhang, Baihua Northeastern University - Shenyang, China , Teng, Yueyang Northeastern University - Shenyang, China , Li, Jianhua Northeastern University - Shenyang, China , Yue, Yong Department of Radiology - Shengjing Hospital of China Medical University - Shenyang, China , Kang, Yan Northeastern University - Shenyang, China , Qian, Wei Northeastern University - Shenyang, China

  • Pages
    14
  • From page
    1
  • To page
    14
  • Abstract
    Using computational fluid dynamics (CFD) method, the feasibility of simulating transient airflow in a CT-based airway tree with more than 100 outlets for a whole respiratory period is studied, and the influence of truncations of terminal bronchi on CFD characteristics is investigated. After an airway model with 122 outlets is extracted from CT images, the transient airflow is simulated. Spatial and temporal variations of flow velocity, wall pressure, and wall shear stress are presented; the flow pattern and lobar distribution of air are gotten as well. All results are compared with those of a truncated model with 22 outlets. It is found that the flow pattern shows lobar heterogeneity that the near-wall air in the trachea is inhaled into the upper lobe while the center flow enters the other lobes, and the lobar distribution of air is significantly correlated with the outlet area ratio. The truncation decreases airflow to right and left upper lobes and increases the deviation of airflow distributions between inspiration and expiration. Simulating the transient airflow in an airway tree model with 122 bronchi using CFD is feasible. The model with more terminal bronchi decreases the difference between the lobar distributions at inspiration and at expiration.
  • Keywords
    CT-Scanned , Terminal , CFD , Airway
  • Journal title
    Computational and Mathematical Methods in Medicine
  • Serial Year
    2017
  • Record number

    2607707