Home LiteratureArticle Details
PMID: 35982840 Published · epublish English Journal Article

CFD simulations of respiratory airflow in human upper airways response to walking and running for oral breathing condition.

Heliyon ·Vol. 8 ·No. 8 ·2022-08-00 ·Pages e10039

Tsega EG

Abstract

Walking and running are common types of physical activities that people do in day to day living, to improve health and physical fitness or for recreation. During a physical activity, rate and depth of breathing increase because working muscles need extra oxygen in order to produce energy. In this study, computational fluid dynamics (CFD) simulations were used to investigate respiratory airflow dynamics in human upper airways response to walking and running for oral breathing. The numerical simulations were done in a realistic CT-scan airway model using ANAYS Fluent 19.0 software. Flow fields were analysed numerically and flow patterns were investigated in the airway model during inspiration and expiration response to walking and running. The axial velocity distributions and secondary flow patterns for the two respiratory phases were analysed response to the two physical activities at different cross-sections of the airway model. The maximum velocity, wall pressure and wall shear stress values for running were respectively 3.2, 9.4 and 5.9 times higher than that of walking during inspiration. The mixing of flow streamlines was observed to be higher during running than walking because of more significant turbulence. More skewed flows at airway curvatures were observed at inspiration than expiration. The results of this study supported the fact that running is a more intense activity than walking from a respiratory dynamics point of view.

Keywords
Airway model CFD Flow fields Numerical simulation Respiratory airflow Running Walking
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Tsega Endalew Getnet
Department of Mathematics, College of Science, Bahir Dar University, Bahir Dar, Ethiopia.
Conflict of Interest

The authors declare no conflict of interest.

References (18)
18 references, click to expand
  1. Computational fluid dynamics simulation of airflow in the trachea and main bronchi for the subjects with left pulmonary artery sling.
    Biomed Eng Online. 2014 Jun 24;13:85 PMID: 24957947
  2. Steady inspiratory flow in a model symmetric bifurcation.
    J Biomech Eng. 1994 Nov;116(4):488-96 PMID: 7869725
  3. Particle Disposition in the Realistic Airway Tree Models of Subjects with Tracheal Bronchus and COPD.
    Biomed Res Int. 2018 Aug 5;2018:7428609 PMID: 30155481
  4. Modeling the bifurcating flow in a CT-scanned human lung airway.
    J Biomech. 2008 Aug 28;41(12):2681-8 PMID: 18667205
  5. Numerical investigation of inspiratory airflow in a realistic model of the human tracheobronchial airways and a comparison with experimental results.
    Biomech Model Mechanobiol. 2016 Apr;15(2):447-69 PMID: 26163996
  6. Detailed computational analysis of flow dynamics in an extended respiratory airway model.
    Clin Biomech (Bristol, Avon). 2019 Jan;61:105-111 PMID: 30544055
  7. Details of regional particle deposition and airflow structures in a realistic model of human tracheobronchial airways: two-phase flow simulation.
    Comput Biol Med. 2016 Jul 1;74:1-17 PMID: 27160637
  8. Energy expenditure comparison between walking and running in average fitness individuals.
    J Strength Cond Res. 2012 Apr;26(4):1039-44 PMID: 22446673
  9. Numerical study of the effects of bronchial structural abnormalities on respiratory flow distribution.
    Biomed Eng Online. 2016 Dec 28;15(Suppl 2):164 PMID: 28155703
  10. Models of the human bronchial tree.
    J Appl Physiol. 1971 Aug;31(2):207-17 PMID: 5558242
  11. Investigation of airflow at different activity conditions in a realistic model of human upper respiratory tract.
    Comput Methods Biomech Biomed Engin. 2021 Feb;24(2):173-187 PMID: 32940084
  12. Large-scale CFD simulations of the transitional and turbulent regime for the large human airways during rapid inhalation.
    Comput Biol Med. 2016 Feb 1;69:166-80 PMID: 26773939
  13. Computational model of airflow in upper 17 generations of human respiratory tract.
    J Biomech. 2008;41(9):2047-54 PMID: 18501360
  14. Respiratory mechanics during exercise in endurance-trained men and women.
    J Physiol. 2007 Jun 15;581(Pt 3):1309-22 PMID: 17412775
  15. Transient Dynamics Simulation of Airflow in a CT-Scanned Human Airway Tree: More or Fewer Terminal Bronchi?
    Comput Math Methods Med. 2017;2017:1969023 PMID: 29333194
  16. Human respiratory tract model for radiological protection. A report of a Task Group of the International Commission on Radiological Protection.
    Ann ICRP. 1994;24(1-3):1-482 PMID: 7726471
  17. Effects of mesh style and grid convergence on particle deposition in bifurcating airway models with comparisons to experimental data.
    Med Eng Phys. 2007 Apr;29(3):350-66 PMID: 16814588
  18. Modeling the bifurcating flow in an asymmetric human lung airway.
    J Biomech. 2003 Jul;36(7):951-9 PMID: 12757804
Article Info
Journal
Heliyon
Abbr.
Heliyon
ISSN
2405-8440
Published
2022-08-00
Epub
2022-00-21
Pages
e10039
Language
English
Region
England
NLM ID
101672560
PMCID
PMC9379579
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]