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PMID: 33407610 Published · epublish English Journal Article

A numerical simulation of air flow in the human respiratory system for various environmental conditions.

Theoretical biology & medical modelling ·Vol. 18 ·No. 1 ·2021-00-06 ·Pages 2

Issakhov A, Zhandaulet Y, Abylkassymova A, Issakhov A

Abstract

The functions of the nasal cavity are very important for maintaining the internal environment of the lungs since the inner walls of the nasal cavity control the temperature and saturation of the inhaled air with water vapor until the nasopharynx is reached. In this paper, three-dimensional computational studies of airflow transport in the models of the nasal cavity were carried out for the usual inspiratory velocity in various environmental conditions. Three-dimensional numerical results are compared with experimental data and calculations of other authors. Numerical results show that during normal breathing, the human nose copes with heat and relative moisture metabolism in order to balance the intra-alveolar conditions. It is also shown in this paper that a normal nose can maintain balance even in extreme conditions, for example, in cold and hot weather. The nasal cavity accelerates heat transfer by narrowing the air passages and swirls from the nasal concha walls of the inner cavity.

Keywords
Air flow in the human respiratory system Alveolar state Finite volume method Heat transfer in the nasal cavity Navier Stokes equation
MeSH Terms
Computer Simulation Humans Nasal Cavity Temperature
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Issakhov Alibek
Al-Farabi Kazakh National University, av. al-Farabi 71, 050040, Almaty, Republic of Kazakhstan. [email protected]. | Kazakh British Technical University, Almaty, Republic of Kazakhstan. [email protected].
Zhandaulet Yeldos
Al-Farabi Kazakh National University, av. al-Farabi 71, 050040, Almaty, Republic of Kazakhstan. | Kazakh British Technical University, Almaty, Republic of Kazakhstan.
Abylkassymova Aizhan
Al-Farabi Kazakh National University, av. al-Farabi 71, 050040, Almaty, Republic of Kazakhstan. | Kazakh British Technical University, Almaty, Republic of Kazakhstan.
Issakhov Assylbek
Al-Farabi Kazakh National University, av. al-Farabi 71, 050040, Almaty, Republic of Kazakhstan. | Kazakh British Technical University, Almaty, Republic of Kazakhstan.
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Article Info
Journal
Theoretical biology & medical modelling
Abbr.
Theor Biol Med Model
ISSN
1742-4682
Published
2021-00-06
Epub
2021-00-06
Pages
2
Language
English
Region
England
NLM ID
101224383
PMCID
PMC7789411
Subset
IM
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